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.
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.

















































































