Zabara Mohammed Ahmed, Ölmez Burak, Buldu-Akturk Merve, Yarar Kaplan Begüm, Kırlıoğlu Ahmet Can, Alkan Gürsel Selmiye, Ozkan Mihrimah, Ozkan Cengiz Sinan, Yürüm Alp
Sabanci University SUNUM Nanotechnology Research Center Istanbul 34956 Türkiye.
Faculty of Engineering and Natural Sciences Sabanci University Istanbul 34956 Türkiye.
Glob Chall. 2024 Jul 4;8(8):2400011. doi: 10.1002/gch2.202400011. eCollection 2024 Aug.
Photoelectrochemical (PEC) hydrogen generation is a promising technology for green hydrogen production yet faces difficulties in achieving stability and efficiency. The scientific community is pushing toward the development of new electrode materials and a better understanding of the underlying reactions and degradation mechanisms. Advances in photocatalytic materials are being pursued through the development of heterojunctions, tailored crystal nanostructures, doping, and modification of solid-solid and solid-electrolyte interfaces. and in situ techniques are utilized to deconvolute the charge transfer mechanisms and degradation pathways. In this review, both materials development and characterization are covered for advancing PEC technologies. The recent advances made in the PEC materials are first reviewed including the applied improvement strategies for transition metal oxides, nitrites, chalcogenides, Si, and group III-V semiconductor materials. The efficiency, stability, scalability, and electrical conductivity of the aforementioned materials along with the improvement strategies are compared. Next, the characterization methods and cite selected studies applied for PEC electrodes are described. studies are very successful in elucidating the reaction mechanisms, degradation pathways, and charge transfer phenomena in PEC electrodes. Finally, the standing challenges and the potential opportunities are discussed by providing recommendations for designing more efficient and electrochemically stable PEC electrodes.
光电化学(PEC)制氢是一种很有前景的绿色制氢技术,但在实现稳定性和效率方面面临困难。科学界正在推动新型电极材料的开发,并更好地理解其潜在反应和降解机制。通过异质结的开发、定制晶体纳米结构、掺杂以及固-固和固体-电解质界面的改性来追求光催化材料的进展。并且利用原位技术来解析电荷转移机制和降解途径。在这篇综述中,涵盖了材料开发和表征以推动PEC技术发展。首先综述了PEC材料方面的最新进展,包括过渡金属氧化物、亚硝酸盐、硫族化物、硅以及III-V族半导体材料的应用改进策略。比较了上述材料的效率、稳定性、可扩展性和电导率以及改进策略。接下来,描述了PEC电极的表征方法并引用了选定的相关研究。这些研究在阐明PEC电极中的反应机制、降解途径和电荷转移现象方面非常成功。最后,通过为设计更高效和电化学稳定的PEC电极提供建议,讨论了现存的挑战和潜在的机会。