Kim Yejoon, Kim Jee Hyeon, Lee Enok, Lee Sanseong, Jung Yoonsung, Jang Yunseo, Oh Inhyeok, Hwang Jun Beom, Lee Jungdae, Lee Kwanghee, Lim Hyunseob, Lee Sanghan
Department of Materials Science and Engineering, Gwangju Institute of Science and Technology (GIST), 123, Cheomdangwagi-ro, Buk-gu, Gwangju, 61005, Republic of Korea.
Department of Chemistry, Gwangju Institute of Science and Technology (GIST), 123, Cheomdangwagi-ro, Buk-gu, Gwangju, 61005, Republic of Korea.
Adv Mater. 2025 Aug 1:e07698. doi: 10.1002/adma.202507698.
The sustainable management of biodiesel byproducts, nitrate (NO ) and glycerol, remains a critical environmental challenge, disrupting global nitrogen and carbon cycles. Addressing this issue from a materials science perspective, a bias-free photoelectrochemical (PEC) upcycling system based on the integration of functional energy materials is presented. A nickel-iron-phosphorus (Ni-Fe-P) electrocatalyst exhibits synergistic bi-functional activity for selective NO reduction and glycerol oxidation, driven by the redox dynamics of Ni and Fe and electronic modulation by phosphorus incorporation. Through a metal-foil encapsulation strategy, the catalyst is integrated with organic semiconductor (OS)-based photoanodes and photocathodes, forming a highly efficient OS-based PEC system capable of stable operation under continuous solar illumination. The individual photoelectrodes demonstrate photocurrent densities of +15.7 and-14.8 mA cm under AM 1.5G conditions, while exhibiting remarkable stability with over 96% of initial performance retained after 60 h. To enable bias-free solar upcycling, a dual-photoelectrode PEC configuration is constructed, delivering a high reaction current of 11.04 mA cm along with >95% Faradaic efficiencies and excellent selectivity for both ammonia (NH) and formic acid (FA) production. This work underscores the potential of materials-driven PEC platforms for selective solar chemical upcycling.