Advanced Eco-Manufacturing and Sustainable Bioproducts with Lignocellulosic Biomass

Green Chemistry is delighted to announce that our latest themed collection, Advanced Eco-Manufacturing and Sustainable Bioproducts with Lignocellulosic Biomass, is now online and free to access until 23 December 2026. Guest Edited by Arthur Ragauskas (University of Tennessee Knoxville), Jhuma Sadhukhan (University of Surrey), Jeong Jae Wie (Hanyang University) and Chang Geun Yoo (State University of New York).

About this collection

This themed collection highlights various innovative chemical pathways for converting lignocellulosic biomass into sustainable, value-added products that promote environmentally responsible industrial practices. It focuses on the innovative use of lignocellulosic biomass in eco-manufacturing, particularly the role of forestry, agriculture, and plant residues as renewable raw materials.

Bringing together cutting-edge research from diverse fields, including green chemistry, materials science, bioengineering, and industrial manufacturing, this themed collection addresses both the challenges and opportunities associated with lignocellulosic biomass. By focusing on real-world applications and emerging technologies, it provides actionable insights to help advance environmentally conscious manufacturing systems and promotes sustainable resource use.

Read the collection

Collection highlights:

Molten salt hydrates: innovative and versatile solvent systems for lignocellulosic biomass processing and valorization

 Jiansong Chen; Haishun Du; Ning Li; Zhiqiang Pang; Ningning Tan; Xiaohui Yang; Chang Geun Yoo; Xiaoxue Zhang; Xuejun Pan

 Green Chem. (2026) 28 (29): 11975–12011.

Process intensification technology-assisted deep eutectic solvent pretreatment for fractionation of lignocellulosic biomass: a review

Qianli Wang; Jiaqi Chen; Xiaoyan Jiang; Chen Huang; Jun-ichiro Hayashi; Xianzhi Meng; Yefeng Zhou

Green Chem. (2026) 28 (26): 10807–10833.

All-water-based fabrication of biodegradable mulch films from dead leaves via complex hydrogen-bonded networks

Pham Thanh Trung Ninh; Shinhyeong Choe; Yongjun Cho; Hoseong Moon; Jaewook Myung

Green Chem. (2026) 28 (10): 4449–4465.

Hydrophobic and mechanically reinforcing coatings from palmitoylated lignin via waterborne spraying

 Jie Wu; Nathan Huang; Daniel Barker-Rothschild; Zhangmin Wan; Minke Yang; Xin Shu; Yi Hu; Joshua Booth; Oliver Evenden; Orlando J. Rojas; Kwang Ho Kim

Green Chem. (2026) 28 (4): 1924–1934.

Design and synthesis of biobased superhydrophobic biochar catalyst derived from Citrus sinensis for biodiesel production using inedible oil feedstocks

Supongsenla Ao; Shuyang Zhang; Peter K. Karoki; Rohit Kousika; Gabriel A. Goenaga-Jimenez; Tyler McCoy; Wei Wang; Nara Han; Chang Geun Yoo; Chandrakanta Guchhait; Bimalendu Adhikari; Xianzhi Meng; Thomas A. Zawodzinski; Samuel Lalthazuala Rokhum; Arthur J. Ragauskas

 Green Chem. (2025) 27 (43): 13789–13803.

Enhanced lignin hydrogenolysis by in situ hydrogen supply through methanol–water aqueous phase reforming over a CoTi@biochar catalyst

Tao Yin; Zhaoyuan Huang; Bowen Luo; Zhipeng Tian; Chao Wang; Jianping Liu; Ying Chen; Riyang Shu

Green Chem. (2026) 28 (26): 10954–10964.

We hope you enjoy reading the articles in this collection. Please get in touch if you have any questions.

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Green Chemistry Emerging Investigators Series – Chaoji Chen

Green Chemistry is proud to present the Green Chemistry Emerging Investigators Series, showcasing work being conducted by Emerging Investigators. This collection aims to highlight the excellent research being carried out by researchers in the early stages of their independent career from across the breadth of green chemistry.  For more information about this series, click here

Among the contributions to this series is a Paper entitled Twin interfacial charge channels enable efficient photorefining of raw biomass

Read our interview with the corresponding author Chaoji Chen below.

Could you briefly explain the focus of your article to the non-specialist?

We have developed a highly efficient strategy for interfacial charge utilization, employing ethylenediamine molecules as twin charge channels to achieve efficient separation and utilization of electrons and holes between ZnS and CdS. This catalyst demonstrates excellent raw biomass photorefining performance, achieving the valorization of agricultural and forestry waste biomass.

Compared to traditional methods, which are high energy consumption and cause secondary environmental pollution, this study achieves the combined use of multiple renewable energy sources, resulting in high reaction efficiency and environmental friendliness, while also providing a model for advancing the practical application of photorefining of raw biomass.

How would you set this article in a wider context?

Amid the global push for carbon peaking and carbon neutrality and the trend toward industrial upgrading, countries are setting higher standards for clean energy and green production technologies. Industrial production urgently needs sustainable, environmentally friendly technologies that can replace traditional fossil fuel-based production methods. The catalytic performance of photorefining raw biomass is further limited by the low charge utilization efficiency at the traditional heterojunction interface. In this study, addressing this critical issue, we propose a twinned charge channel strategy to enable the efficient utilization of interfacial charge. This study further progresses the application of photorefining to raw biomass.

What is the motivation behind this work?

The research concept for this work stems from issues such as the low charge utilization efficiency at the heterojunction interfaces of existing photocatalysts and the inherent recalcitrance of the raw biomass structure, which result in unsatisfactory photorefining performance of the raw biomass. We recognize that constructing twin charge channels at the interface holds promise for resolving these issues. This strategy enables rapid separation and utilization of interface charges while preventing the accumulation of surface holes, effectively suppressing photocorrosion and maintaining the photostability of the catalyst.

What aspects of this work are you most excited about at the moment and what do you find most challenging about it?

This catalyst achieves a breakthrough hydrogen production rate in the photorefining of raw biomass. This strategy has significantly advanced applied research on the photorefining of raw biomass and provides a theoretical foundation for the subsequent design of highly efficient photocatalysts. The challenge of this study is how to construct stable and efficient twin charge channels at the interface and apply them to complex photorefining reactions of raw biomass. To address this challenge, we conducted extensive design and optimization work and performed a detailed analysis of the atomic microenvironment of the materials.

What is the next step? What work is planned?

We are currently exploring the application of this strategy to other photocatalysts of the same type to develop a highly efficient and stable design strategy. Meanwhile, we implement a multi-stage separation strategy based on the complex composition and inherent recalcitrance of raw biomass, and utilize a combined catalytic process to achieve highly efficient catalytic conversion of all components of raw biomass.

Please describe your journey to becoming an independent researcher.

My research career began when I was studying in Professor Yunhui Huang’s group at Huazhong University of Science and Technology (HUST), Wuhan, China, under the supervision of Professor Yunhui Huang and Professor Xianluo Hu, where I developed a strong interest in materials science and energy storage. Later, I joined Professor Jia Xie’s Lab to continue my research on rechargeable batteries. I then moved to Professor Liangbing Hu’s group at the University of Maryland at College Park to continue my postdoctoral research, where I accumulated extensive experience in renewable material engineering and utilization. After joining the School of Resource and Environmental Sciences at Wuhan University, I established an independent research group (X-BIOMASS LAB) focusing on developing green processing strategies, high value-added utilization technologies and comprehensive environmental assessment means of biomass materials, aiming to provide a sustainable solution for biomass utilization and petrochemical product substitution.

Can you share one piece of career-related advice or wisdom with other early career scientists?

For emerging researchers, success in this field requires patience, persistence, and a strong belief in the societal value of one’s work. The path toward a sustainable materials future may be challenging, but it is filled with opportunities for meaningful innovation and impact.

Why did you choose to publish in Green Chemistry?

Choosing Green Chemistry was a natural decision, as this work aligns well with the journal’s scope and mission to advance sustainable chemistry. Furthermore, the journal’s prestigious reputation in green materials and chemistry allow our work to reach a highly relevant academic and industrial audience.

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A selection of articles on Biocatalysis and Whole-Cell Systems in Green Chemistry

Biocatalysis is helping to drive more sustainable chemical manufacturing through selective, low-energy transformations using enzymes and microbial systems. This selection of articles from Green Chemistry highlights advances in enzyme engineering, chemoenzymatic and multi-enzyme cascades, whole-cell biocatalysis, continuous-flow processes, and biomass valorisation, while showcasing innovative routes to renewable chemicals and bio-based products.

A novel nutritional induction strategy flexibly switching the biosynthesis of food-like products from methane by a methanotrophic bacterium

Zixi Gao; Shuqi Guo; Yunhao Chen; Hansen Chen; Rongzhan Fu; Qiaoqiao Song; Shen Li; Wenyong Lou; Daidi Fan; Yin Li; Shihui Yang; Ramon Gonzalez; Qiang Fei

Green Chem. (2024) 26 (12): 7048–7058.

Bioprocess development and scale-up for cis,cis-muconic acid production from glucose and xylose by Pseudomonas putida

Sekgetho C. Mokwatlo; Bruno C. Klein; Pahola Thathiana Benavides; Eric C. D. Tan; Colin M. Kneucker; Chen Ling; Christine A. Singer; Robert Lyons; Violeta Sànchez i Nogué; Kelley V. Hestmark; Morgan A. Ingraham; Kelsey J. Ramirez; Christopher W. Johnson; Gregg T. Beckham; Davinia Salvachúa

Green Chem. (2024) 26 (19): 10152–10167.

Chemoenzymatic synthesis of amino-esters as precursors of ammonium salt-based surfactants from 5-hydroxymethylfurfural (HMF)

Carlos Moriana Herraiz; Karen S. Arias; Maria J. Climent; Sara Iborra; Avelino Corma

Green Chem. (2024) 26 (16): 9118–9131.

Dehydration in water: solid-supported lipases as green catalysts for esterification

Rohan M. Thomas; Monica S. Lopez Lemus; Krithika Ganesh; David B. Obbard; Karthikeyan Sivashanmugam; Ganesh Sambasivam; Yang Yang; Bruce H. Lipshutz

Green Chem. (2024) 26 (17): 9320–9329.

Monoliths enabling biocatalysis in flow chemistry

Aleksandra Lambarska; Katarzyna Szymańska; Ulf Hanefeld

Green Chem. (2024) 26 (21): 10718–10738.

Constructing a chemoenzymatic strategy for enhancing the efficiency of selectively transforming 5-hydroxymethylfurfural into furan carboxylic acids

Zhiyu Zhang; Xiaowang Zhang; Siyu Qi; Qi Na; Kaichen Zhao; Ziyi Yu; Zhuotao Tan; Hanjie Ying; Chenjie Zhu

Green Chem. (2025) 27 (3): 642–649.

Biotransformation of C20- and C22-polyunsaturated fatty acids and fish oil hydrolyzates to R,R-dihydroxy fatty acids as lipid mediators using double-oxygenating 15R-lipoxygenase

Jin Lee; Yoon-Joo Ko; Jin-Byung Park; Deok-Kun Oh

Green Chem. (2024) 26 (8): 4665–4676.

Continuous-flow chemo-enzymatic gram-scale synthesis of indole-3-acetic acid

Sippakorn Mapinta; Sirus Kongjaroon; Duangthip Trisrivirat; Chatchai Kesornpun; Jie Wu; Pimchai Chaiyen; Nopphon Weeranoppanant

Green Chem. (2025) 27 (3): 793–803.

Design and engineering of biosynthetic and regeneration pathways for central sulfate donors: toward the sustainable production of bioactive sulfated products

Ruirui Xu; Fengling Yang; Weiquan Ding; Xiaoyuan Sun; Yaoqi Tian; Jian Chen; Zhen Kang

Green Chem. (2026) 28 (5): 2220–2234.

Advances and challenges in fatty acid photodecarboxylases: towards greener chemistry applications?

Eman Bassiony; Aikaterini Margariti; Bekir Engin Eser; Selin Kara

Green Chem. (2026). Newly published

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A selection of articles on Mechanochemistry in Green Chemistry

Mechanochemistry is transforming the way chemists design and carry out chemical transformations, offering solvent-free or solvent-minimized routes that reduce waste, improve efficiency and enable access to novel reactivity.

This selection of articles highlights recent contributions published in Green Chemistry that showcase the breadth of mechanochemical approaches. It includes works on sustainable organic synthesis, polymer functionalisation, plastic recycling, battery materials recovery and biomass valorisation.

Chemical recycling of polycarbonate and polyester without solvent and catalyst: mechanochemical methanolysis

Hyo Won Lee, Kwangho Yoo, Lars Borchardt and Jeung Gon Kim.

Green Chem. (2024) 26 (4): 2087–2093

Driving the rapid regeneration of LiFePO4 from spent lithium-ion batteries through one-pot mechanochemical activation

 Chenyan Wang, Xuejing Qiu, Gaoyang Shen, Xizhuo Chen, Jiamei Wang, Lingling Xie, Qing Han, Limin Zhu, Jingjing Li and Xiaoyu Cao

Green Chem. (2024) 26 (3): 1501–1510.

Mechanochemical-assisted decarboxylative sulfonylation of α,β-unsaturated carboxylic acids with sodium sulfinate salts

Barakha Saxena, Roshan I. Patel, Shruti Sharma and Anuj Sharma

Green Chem. (2024) 26 (5): 2721–2729.

A solvent-free mechanochemical electrophilic C–H thiocyanation of indoles and imidazo[1,2-a]pyridines using a cost-effective combination of N-chlorosuccinimide-NaSCN and tandem C–C and C–S bond formation

Soumik Saha, Abigail B. Pinheiro, Amrita Chatterjee, Zigmee T. Bhutia and Mainak Banerjee

Green Chem. (2024) 26 (10): 5879–5889.

One-pot mechanochemical hydrogenation and acetylation of 4-nitrophenol to 4-aminophenol and paracetamol

Jimin Park, Jacob S. Maier, Caria Evans, Marta Hatzell, Stefan France, Carsten Sievers and Andreas S. Bommarius

 Green Chem. (2024) 26 (7): 4079–4091.

Ball milling-promoting difunctionalization of alkynyl sulfonium salts with sulfinic acids towards (Z)-1,2-disulfonylethenes

Li-Hua Yang, Bei Li, Lin Chen, Wen-Shi Yao, Han-Yue Peng, Sha Peng and Long-Yong Xie

Green Chem. (2024) 26 (24): 12070–12075.

Mechanochemical and aging-based reductive amination with chitosan and aldehydes affords high degree of substitution functional biopolymers

Galen Yang; Sophie Régnier; Noah Huin; Tracy Liu; Edmond Lam and Audrey Moores

Green Chem. (2024) 26 (9): 5386–5396.

Comparison of greenness and whiteness of selected mechanochemical and solution-based reactions using a new RGBsynt model

Paweł Mateusz Nowak; Michał Kamiński; Wojciech Trybała; Vittorio Canale and Paweł Zajdel

Green Chem. (2025) 27 (4): 1102–1112.

Mechanochemical ball milling as an emerging tool in chemical recycling and upcycling of waste polymers

Anamarija Briš, Davor Margetić and Vjekoslav Štrukil

Green Chem. (2025) 27 (45): 14401–14435.

Mechanochemical transformations of polysaccharides to value added products: a review with Green Chemistry evaluation

 Galen Yang; Yasmeen Jaberi; Edmond Lam and Audrey Moores

 Green Chem. (2026) 28 (7): 3006–3042.

Mechanochemical sulfenylation of maleimides

Sebastián Martin-Martínez; Camilo Morales-Manrique; Gustavo Marín and Diego Gamba-Sánchez

Green Chem. (2026) 28 (26): 11162–11169.

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A selection of articles on sustainable hydrogen, electrochemistry and circular energy systems in Green Chemistry

This selection of articles from Green Chemistry highlights recent advances in sustainable energy systems, electrochemical processes, and circular materials design. The articles showcase how innovations in catalysis, electrochemical engineering and life‑cycle assessment are driving the transition towards low‑carbon chemical production and energy storage.

The selection includes hydrogen production pathways, ammonia synthesis, biomass valorisation, and next-generation battery materials.

Climate change performance of hydrogen production based on life cycle assessment

Gulam Husain Patel, Jouni Havukainen, Mika Horttanainen, Risto Soukka, and Mari Tuomaala

Green Chem., 2024,26, 992-1006

Hydrogel-stabilized zinc ion batteries: progress and outlook

Le Li, Shaofeng Jia, Shi Yue, Conghui Wang, Hengwei Qiu, Yongqiang Ji, Minghui Cao, and Dan Zhang

Green Chem., 2024,26, 6404-6422

Techno-economic and life cycle analysis of bio-hydrogen production using bio-based waste streams through the integration of dark fermentation and microbial electrolysis

Arna Ganguly, Pingping Sun, Xinyu Liu, Hernan E. Delgado, Lili Sun, and Amgad Elgowainy

Green Chem., 2025,27, 6213-6231

Tailoring metal–support interaction over faceted TiO2 and copper nanoparticles for electrocatalytic nitrate reduction to ammonia

Wahyu Prasetyo Utomo, Hao Wu, Rui Liu, and Yun Hau Ng

Green Chem., 2024,26, 1443-1453

Perspective on direct seawater electrolysis and electrodesalination: innovations and future directions for mining green X

Gun‑hee Moon, Jonghun Lim, Byeong‑ju Kim, Dong Suk Han, and Hyunwoong Park

Green Chem., 2025,27, 982-1005

Supporting critical raw material circularity – upcycling graphite from waste LIBs to Zn–air batteries

Reio Praats, Alexander Chernyaev, Jani Sainio, Mari Lundström, Ivar Kruusenberg, and Kerli Liivand

Green Chem., 2024,26, 2874-2883

Unidirectional competitive redox enabled unsegmented natural sea-water splitting for green hydrogen production

Hemanga Pradhan, Ritwik Mondal, Bhojkumar Nayak, Ravikumar Thimmappa, Rahul Mahadeo Mendhe, and Musthafa Ottakam Thotiyl

Green Chem., 2025,27, 770-781

From lignin to jet fuel: advancing selective cyclohydrocarbon production toward full compatibility with aviation standards

Jianyu Wang, Zheng Li, Chun Zhao, Jing Zhang, Aiguo Wang, Liquan Jing, Na Zhong, Zhangxin Chen, and Jinguang Hu

Green Chem., 2026,28, 2166-2195

Optimal design of decentralized ammonia production via electric Haber–Bosch systems

Lorenzo Rosa and Davide Tonelli

Green Chem., 2026,28, 4103-4118

The importance of chemical reagents for the electric vehicle battery supply chain

Robert Istrate, Leopold Peiseler and Vanessa Schenker

Green Chem., 2026,28, 3527-3540

This selection highlights only a small snapshot of recent Green Chemistry research in sustainable energy systems, electrochemical technologies, and circular resource use. For much more on these topics, explore the journal at https://rsc.li/green-chem.

If you would like to publish your research with Green Chemistry or have a suggestion for a timely and impactful topic, contact us at green-rsc@rsc.org.

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Green Chemistry Emerging Investigators Series – Lorenzo Rosa

Green Chemistry is proud to present the Green Chemistry Emerging Investigators Series, showcasing work being conducted by Emerging Investigators. This collection aims to highlight the excellent research being carried out by researchers in the early stages of their independent career from across the breadth of green chemistry.  For more information about this series, click here

Among the contributions to this series, there is an article entitled Optimal design of decentralized ammonia production via electric Haber–Bosch systems

Ammonia-based fertilizers support food production for roughly half of the global population, while ammonia is also emerging as a clean-energy carrier for industry, power, and transport. This study shows that small, local ammonia plants powered by grid electricity or nearby renewable energy can be economically competitive with today’s large centralized facilities in some regions, especially when transport costs and supply-chain risks are considered.

Read our interview with the corresponding author Dr Lorenzo Rosa below.

How would you set this article in a wider context?

This work sits at the intersection of the chemical industry, the energy transition, and global food-energy security. Ammonia is essential for modern agriculture, yet its production today is largely centralized, heavily dependent on fossil fuels, and concentrated in a limited number of regions, making fertilizer markets vulnerable to energy price volatility, geopolitical tensions, and trade disruptions. Recent events such as the 2022 energy crisis and risks to key shipping routes like the Strait of Hormuz have highlighted these vulnerabilities. By evaluating decentralized, low-carbon ammonia production pathways, the article contributes to broader efforts to decarbonize one of the world’s most important industrial chemicals, strengthen supply-chain resilience, and improve access to affordable fertilizers for farmers. More broadly, it illustrates how clean-energy technologies can simultaneously advance climate goals, industrial transformation, and resilience worldwide.

 What is the motivation behind this work?

The central motivation behind this work is the need to make ammonia fertilizer supply more resilient, affordable, and sustainable. Today’s ammonia production is highly carbon-intensive, geographically concentrated, and reliant on long-distance transport networks, which increase costs and expose farmers, especially those in remote, import-dependent, or food-insecure region, to price spikes and supply disruptions. Recent energy and geopolitical crises have shown how vulnerable these systems can be. Decentralized, low-carbon ammonia technologies offer a potential alternative by producing fertilizer closer to where it is needed, reducing emissions, lowering dependence on fragile global supply chains, and supporting the broader transition to net-zero food and energy systems.

What aspects of this work are you most excited about at the moment and what do you find most challenging about it?

What excites me most is seeing startups and industrial innovators actively developing these technologies through real pilot projects and commercial applications, supported by growing venture capital investment. It is encouraging that our work can help inform and support these efforts by providing an in-depth assessment of where decentralized ammonia production is most viable, which pathways are most promising, and how these systems could contribute to more resilient and low-carbon fertilizer supply chains. At the same time, some of the most innovative pathways—particularly electrocatalytic ammonia production—are still at an early stage of technological readiness and require substantial advances in materials science, efficiency, and scale-up before they can compete commercially. Another major challenge is that there is no one-size-fits-all solution: widespread adoption across regions with very different electricity prices, renewable energy resources, infrastructure quality, and policy environments will likely require locally tailored business models, incentives, and regulatory support.

What is the next step? What work is planned?

The next step is to translate these findings into practical guidance for implementation. This includes advisory work with industry partners and startups developing decentralized ammonia technologies. For example, I currently serve as an advisor for Ammobia (https://www.ammobia.co/), a technology company developing a low-pressure “Haber-Bosch 2.0” system, helping identify the most promising markets, business models, and deployment strategies for low-carbon fertilizer systems. We also plan to contribute to policy reports that can support appropriate regulation, incentives, and agricultural extension programs so that farmers and local communities can effectively benefit from these systems.

On the research side, an important priority is to move from global assessments to regional and country-level analyses. Local studies are needed to evaluate how factors such as electricity prices, renewable energy availability, infrastructure, fertilizer demand, and farming systems shape the feasibility of decentralized ammonia production in specific contexts. This will help ensure that future deployment is both economically viable and socially beneficial.

Please describe your journey to becoming an independent researcher

My journey to becoming an independent researcher has been shaped by a strong motivation to address real-world sustainability challenges at the intersection of water, food, energy, and climate change. I began with training in environmental engineering, where I developed quantitative skills in systems analysis, modeling, and resource management. During my PhD and postdoctoral work, I focused on understanding how human and natural systems interact under growing environmental pressures, particularly how water scarcity, agriculture, and energy transitions affect global sustainability.

Over time, I moved from contributing to existing projects to leading my own research agenda, developing new questions, building interdisciplinary collaborations, and mentoring students and early-career researchers. This transition was supported by opportunities to work across leading academic environments and engage with scientists, engineers, and policymakers from different fields.

Today, as an independent researcher, I lead projects that combine engineering, Earth system science, and decision analysis to evaluate innovative solutions—from sustainable irrigation to low-carbon ammonia production. What has guided me throughout this journey is the belief that research should not only advance knowledge, but also provide practical pathways toward a more resilient and sustainable future.

Can you share one piece of career-related advice or wisdom with other early career scientists?

Choose research questions that genuinely matter to you and have real societal relevance, because curiosity and purpose are what sustain you through the inevitable setbacks of an academic career. At the same time, invest as much in people as in publications: build strong collaborations, seek mentors, support peers, and treat students generously. Careers often advance not only through good ideas, but through trust, reputation, and the communities you help create.

Why did you choose to publish in Green Chemistry?

 I chose to publish in Green Chemistry because it is a leading journal at the forefront of sustainable chemical innovation and reaches a broad audience working on decarbonization, clean industrial processes, and resource-efficient technologies. The journal is an excellent fit for research on low-carbon ammonia production, which connects chemistry, energy systems, and sustainability.

I was also encouraged to submit this work by André Bardow, who recommended the journal after I presented this research during a talk at ETH Zurich. That recommendation reinforced my view that this study would resonate strongly with the journal’s readership. 

Meet the author

Dr Lorenzo Rosa is a Principal Investigator at the Carnegie Institution for Science at Stanford. He is an environmental engineer whose work focuses on designing resilient water, energy, and food systems through the integration of systems modeling, hydrologic simulation, techno-economic and life-cycle assessment, optimization, geospatial data science, and machine learning. He earned his Ph.D. from the University of California, Berkeley and completed postdoctoral training at ETH Zurich in the Institute of Energy and Process Engineering. His research examines how environmental systems respond to climate stress and resource constraints, with applications spanning water resources and scarcity management, sustainable agricultural systems, and decarbonization of fertilizers and fuels. Dr. Rosa collaborates with academic, industry, and policy partners to translate research into practice through pilot-scale demonstrations and real-world implementation pathways. His contributions have been recognized with several honors, including the American Geophysical Union Science for Solutions Award and the Leonardo Award in Engineering. He was also named Forbes 30 Under 30 in Science and Technology and included in the 2025 Clarivate Highly Cited Researchers list.Top of Form

 

 

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Green Chemistry Emerging Investigators Series – Lin Dai

Green Chemistry is proud to present the Green Chemistry Emerging Investigators Series. This collection aims to highlight the excellent research being carried out by researchers in the early stages of their independent career from across the breadth of green chemistry. For more information about this series, click here

Among the contributions to this series is a Tutorial Review entitled The development of lignin towards a natural and sustainable platform for optical materials

Read our interview with the corresponding author Lin Dai below.

What aspects of this work are you most excited about at the moment and what do you find most challenging about it?

In addition to providing mechanical support and conferring chemical and biological resistance to trees and other natural plants, lignin exhibits a variety range of optical properties, including photothermal conversion, ultraviolet blocking, photoluminescence, and aggregation-induced emission. This inherent combination of mechanical and optical functionalities offers a highly promising source of inspiration for the development of advanced optical materials, representing one of the most compelling attributes of lignin.

We regard the following aspects as the most challenging:

  1. The molecular and micro‑structures of lignin remain incompletely elucidated, which limits the rational design of high‑performance and multifunctional lignin‑based materials. Establishing a more comprehensive chemical understanding of lignin is essential for unlocking its full functional potential.
  1. The heterogeneity of industrial lignin feedstocks often leads to inconsistent performance in lignin‑based materials, complicating direct comparison across different studies. Developing efficient and reproducible fractionation protocols is of critical for achieving stable material performance and facilitating future industrialization.

What is the next step? What work is planned?

My research team is dedicated to advancing the field of “lignin chemistry and materials,” with a particular focus on the macromolecular design of lignin and the development of its functional properties. For instance, we aim to elucidate the photothermal conversion mechanisms of lignin molecules and explore pathways for the repolymerization of industrial lignin fragments. We are committed to expanding the application scope of lignin-based materials and enhancing their practical performance.

Please describe your journey to becoming an independent researcher

My research career began at Beijing Forestry University, where I pursued my doctoral studies under the dedicated guidance of Professors Jiandu Lei and Jing He. Their mentorship was instrumental in developing my expertise in molecular modification and the design and fabrication of micro‑ and nanomaterials.

I have further expanded my research capabilities through postdoctoral training under the supervision of Professor Yonghao Ni, at the University of New Brunswick. This experience allowed me to deepen my knowledge in biomass‑based and paper‑based functional materials, while strengthening my ability to integrate theoretical foundations with practical applications.

Since joining Tianjin University of Science and Technology in 2016, I have actively engaged in numerous interdisciplinary collaborations, which have led to several innovative research outcomes. Collectively, these educational and collaborative experiences have equipped me with the skills to identify research directions, organize teams, and execute projects, ultimately shaping my path as an independent researcher.

Can you share one piece of career-related advice or wisdom with other early career scientists?

Continuous learning, active engagement, critical thinking, and effective execution.

Why did you choose to publish in Green Chemistry?

Green Chemistry is a leading journal in the fields of chemistry and sustainable technology, widely recognized for its high academic prestige. Our manuscript aligns closely with the journal’s scope, and we believe that publication in this journal will effectively disseminate our research findings to a broad and relevant audience within the scientific community.

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Organic Chemistry in Green Chemistry: Key Highlights

Green Chemistry is delighted to announce that our latest Editor’s choice collection, Organic Chemistry in Green Chemistry: Key Highlights, is now online and free to access until the end of July 2026.

This collection highlights outstanding research in organic chemistry that showcases advances in green chemistry. The selected articles demonstrate design‑stage approaches that improve resource and energy efficiency, introduce enabling concepts and technologies, and deliver demonstrable environmental benefit.

Guest Edited and curated by our Associate Editors Arjan W. Kleij (Institute of Chemical Research of Catalonia, ICIQ-Cerca) and Aiwen Lei (Wuhan University). Collection highlights:

About this collection: The featured articles explore novel reaction pathways, transformative applications, alternative feedstock and cutting-edge technologies. The collection highlights how organic chemistry continues to evolve as a key driver of innovation in creating cleaner and more efficient chemical processes.

Read the collection: https://rsc.li/GCOrganic

Collection highlights:

Missing-linker defects in a covalent organic framework photocatalyst for highly efficient synthesis of tetrahydroquinoline

 Yuling Zhao, Kangna Zhang, Keping Zhu, Yaqin Zhao, Hanping Zhai, and Jikuan Qiu

 Green Chem., 2024, 26, 2645-2652

Towards a sustainable tomorrow: advancing green practices in organic chemistry

Sudripet Sharma, Fabrice Gallou, and Sachin Handa.

 Green Chem., 2024, 26, 6289-6317

Photoelectrochemical nickel-catalyzed carboacylation/silanoylation of alkenes with unactivated C/Si–H bonds

 Lanfen Wang, Xiangyu Huo, Xiaozhi He, Lutz Ackermann, and Dingyi Wang.

Green Chem., 2024, 26, 8315-8322

Photo-induced intramolecular alkyl/aryl group transfer and SO2 insertion: a new strategy for the synthesis of 3-(alkyl/arylsulfonyl)benzothiophenes

 Tiantian Xu, Fen‑Dou Wang, Wen‑Chao Yang, Tong Lu, Min Wang, and Pinhua Li.

Green Chem., 2025, 27, 2386-2391

‘Green’ synthesis of amines from renewable resources? A detailed analysis of case studies using the CHEM21 green metrics toolkit

 Anastasiia M. Afanasenko, Noemi Deak, Jacquin October, Roberto Sole, and Katalin Barta.

 Green Chem., 2025, 27, 5947-5981

Auto-relay catalysis for the oxidative carboxylation of alkenes into cyclic carbonates by a MOF catalyst

 Ha Phan, Pol de la Cruz‑Sánchez, María Jesús Cabrera‑Afonso, and Belén Martín‑Matute

 Green Chem., 2025, 27, 2439-2448

We hope you enjoy reading the articles in this collection. Please get in touch if you have any questions

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A selection of articles on sustainable process intensification in Green Chemistry

This selection of articles from Green Chemistry highlights recent advances in sustainable process design and intensified reaction technologies. The articles illustrate how innovations in flow chemistry, micro-reaction engineering and catalytic methodologies are reshaping modern chemical practice.

The selection includes emerging strategies for reducing environmental impact through enhanced mass transfer, improved life-cycle performance, more efficient reaction platforms, and sustainability assessments of flow systems.

Sustainability of flow chemistry and microreaction technology

Volker Hessel, Sampurna Mukherjee, Sutanuka Mitra, Arunava Goswami, Nam Nghiep Tran, Francesco Ferlin, Luigi Vaccaro, Fariba Malekpour Galogahi, Nam‑Trung Nguyen, and Marc Escribà‑Gelonch.

Green Chem., 2024, 26, 9503-9528

Pickering emulsion-derived nano/microreactors for unconventional interfacial catalysis: state-of-the-art advances and perspectives in green reactions

 Ansar Abbas, Sameer Hussain, Muhammad Asad, Asma Khatoon, Ali Raza, and Silong Xu

Green Chem., 2024, 26, 3039-3057

Efficient lignin depolymerization by continuous flow microreactor-assisted electrochemical advanced oxidation in water/co-solvent system

Lalida Waura-angkura, Babasaheb M. Matsagar, Kevin Lee, Varong Pavarajarn, and Kevin C.-W. Wu

Green Chem., 2024, 26, 1889-1900

Batch and flow synthesis of sulfides and sulfoxides using green solvents and oxidant through visible-light photocatalysis

 Jin Park, Su Hyeon Kim, Jun‑Young Cho, Shafrizal Rasyid Atriardi, Jae‑Young Kim, Hanifah Mardhiyah, Boyoung Y. Park, and Sang Kook Woo.

Green Chem., 2025, 27, 3284-3292

Green solvent mixture for ultrasound-assisted solid-phase peptide synthesis: a fast and versatile method and its applications in flow and natural product synthesis

 Jingyuan Liao, Renrong Zhang, Xuelei Jia, Meiling Wang, Chaoyi Li, Juntao Wang, Renjin Tang, Junrong Huang, Hengzhi You, and Fen‑Er Chen.

Green Chem., 2024, 26, 10549-10557

A high-performance lignin flow fuel cell based on self-generating electricity of lignin at low temperature via a privileged structure and redox chemistry

 Zixin Xie, Xihong Zu, Jinxin Lin, Xueqing Qiu, Tengda Liang, and Liheng Chen.

 Green Chem., 2024, 26, 2021-2030

Continuous-flow synthesis of cyclic carbonates with polymer-supported imidazolium-based ionic liquid (Im-PSIL) catalysts

Zhibo Yu, Haruro Ishitani, and Shu Kobayashi.

Green Chem., 2024, 26, 11548-11555

Monoliths enabling biocatalysis in flow chemistry

 Aleksandra Lambarska, Katarzyna Szymańska, and Ulf Hanefeld.

Green Chem.
,
2024, 26, 10718-10738

Efficient continuous flow oxidation of furfural to maleic anhydride using O2 as a green oxidant

 Jonas Mortier, Christian V. Stevens, and Thomas S. A. Heugebaert.

Green Chem., 2025, 27, 5063-5072

Two-step continuous flow aerobic oxidation of cannabidiol to cannabinoquinone derivatives

Manuel Zielke, Christof Aellig, Dominique M. Roberge, Christopher A. Hone, and C. Oliver Kappe.

Green Chem., 2025, 27, 6787-6795

This selection highlights only a small snapshot of recent Green Chemistry research in sustainable process intensification. For much more on sustainable process design and intensified reaction technologies, explore the journal at https://rsc.li/green-chem.

If you would like to publish your research with Green Chemistry or have a suggestion for a timely and impactful topic, contact us at green-rsc@rsc.org.

Engage with us and stay tunned for more news

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A selection of articles on green solvents in Green Chemistry

This selection of articles from Green Chemistry highlights recent advances in green solvents. It showcases how ionic liquids, deep eutectic solvents, and poly(ionic liquid) materials enable cleaner, more efficient approaches to extractions, separations, CO₂ capture, catalysis, and materials synthesis.

Deep eutectic solvents as an emerging green platform for the synthesis of functional materials

 Yunping Ma, Yu Yang, Tie Li, Shahid Hussain, and Maiyong Zhu.

Green Chem., 2024, 26, 3627-3669

Machine learning models accelerate deep eutectic solvent discovery for the recycling of lithium-ion battery cathodes

Fengyi Zhou, Dingyi Shi, Wenbo Mu, Shao Wang, Zeyu Wang, Chenyang Wei, Ruiqi Li, and Tiancheng Mu.

Green Chem., 2024, 26, 7857-7868

 

Deep eutectic solvents towards green polymeric materials

Udyani Aloka Weerasinghe, Tingting Wu, Pei Lin Chee, Pek Yin Michelle Yew, Hiang Kwee Lee, Xian Jun Loh, and Kai Dan

Green Chem., 2024, 26, 8497-8527

 

Preparation of homogeneous lignin nanoparticles by efficient extraction of lignin and modification of its molecular structure using a functional deep eutectic solvent containing γ-valerolactone

Mingzhu Yao, Baojie Liu, Lina Qin, Zicheng Du, Zenglin Wang, Chengrong Qin, Chen Liang, Caoxing Huang, and Shuangquan Yao

 Green Chem., 2024, 26, 4528-4543

 

Ionic liquids for the green synthesis of 1,2,3-triazoles: a systematic review

 Aman Kumar, Vijay Kumar, Prashant Singh, Ram Kumar Tittal, and Kashmiri Lal.

Green Chem., 2024, 26, 3565-3594

Natural deep eutectic solvents (NaDES): green solvents for pharmaceutical applications and beyond

Emma Chevé‑Kools, Young Hae Choi, Catherine Roullier, Gwenaël Ruprich‑Robert, Raphaël Grougnet, Florence Chapeland‑Leclerc, and Frank Hollmann.

Green Chem., 2025, 27, 8360-8385

Examining the potential of type V DESs for the solvent extraction of metal ions

 Nicolas Schaeffer, Inês C. M. Vaz, Maísa Saldanha Pinheiro, Felipe Olea, Takafumi Hanada, Sandrine Dourdain, and João A. P. Coutinho

Green Chem., 2025, 27, 4438-4463

Design and application of a decatungstate-based ionic liquid photocatalyst for sustainable hydrogen atom transfer reactions

Miguel Claros, Julian Quévarec, Sara Fernández‑García, and Timothy Noël.

Green Chem., 2025, 27, 7660-7666

 

Design of halogen-free hyper-crosslinked porous ionic polymers for efficient CO2 capture and conversion

Xiaoqing Yang, Jinshan Zhao, Junfeng Zeng, Bihua Chen, Liang Tang, Jun Zhang, Akif Zeb, Zhiyong Li, Shiguo Zhang, and Yan Zhang.

Green Chem., 2025, 27, 1729-1739

 

Carboxyl-functionalized ionic liquids enable green preparation of chitosan-based ionic gel membranes for H2S separation

Ping Zhang, Hao Zhu, Zhuoheng Tu, Xingbang Hu, and Youting Wu.

Green Chem., 2025, 27, 7691-7703

This selection highlights only a small snapshot of recent Green Chemistry research in green solvents. For more, explore the full journal at https://rsc.li/green-chem.

If you would like to publish your research with Green Chemistry or have a suggestion for a timely and impactful topic, contact us at green-rsc@rsc.org.

Engage with us and stay tunned for more news

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