Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin, 300072, China.
Key Laboratory for Green Chemical Technology of Ministry of Education, School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, China.
Adv Mater. 2018 Jul;30(30):e1707502. doi: 10.1002/adma.201707502. Epub 2018 May 11.
Collecting and storing solar energy to hydrogen fuel through a photo-electrochemical (PEC) cell provides a clean and renewable pathway for future energy demands. Having earth-abundance, low biotoxicity, robustness, and an ideal n-type band position, hematite (α-Fe O ), the most common natural form of iron oxide, has occupied the research hotspot for decades. Here, a close look into recent progress of hematite photoanodes for PEC water splitting is provided. Effective approaches are introduced, such as cocatalysts loading and surface passivation layer deposition, to improve the hematite surface reaction in thermodynamics and kinetics. Second, typical methods for enhancing light absorption and accelerating charge transport in hematite bulk are reviewed, concentrating upon doping and nanostructuring. Third, the back contact between hematite and substrate, which affects interface states and electron transfer, is deliberated. In addition, perspectives on the key challenges and future prospects for the development of hematite photoelectrodes for PEC water splitting are given.
通过光电化学(PEC)电池将太阳能收集和储存为氢气燃料,为未来的能源需求提供了一种清洁可再生的途径。赤铁矿(α-Fe2O3)是最常见的天然氧化铁形式,具有丰富的地球资源、低生物毒性、鲁棒性和理想的 n 型能带位置,几十年来一直是研究热点。本文深入探讨了用于 PEC 水分解的赤铁矿光阳极的最新进展。介绍了有效方法,例如负载助催化剂和沉积表面钝化层,以改善赤铁矿表面反应的热力学和动力学。其次,综述了增强赤铁矿体中光吸收和加速电荷输运的典型方法,重点讨论了掺杂和纳米结构。第三,讨论了赤铁矿与衬底之间的背接触,这会影响界面状态和电子转移。此外,还对赤铁矿光电化学水分解电极的关键挑战和未来前景进行了展望。