软件部署
材料科学
降级(电信)
可扩展性
燃料电池
分解水
耐久性
限制
纳米技术
铱
催化作用
计算机科学
化学工程
光催化
机械工程
电信
复合材料
工程类
化学
操作系统
数据库
生物化学
作者
Tobias A. Kistler,Guosong Zeng,James L. Young,Lien‐Chun Weng,Chase Aldridge,Keenan Wyatt,Myles A. Steiner,Oscar Solorzano,Frances A. Houle,Francesca M. Toma,Adam Z. Weber,Todd G. Deutsch,Nemanja Danilovic
标识
DOI:10.1002/aenm.202002706
摘要
Abstract Photoelectrochemical (PEC) water splitting provides a pathway to generate sustainable clean fuels using the two most abundant resources on Earth: sunlight and water. Currently, most of the successful models of PEC cells are still fabricated on small scales near 1 cm 2 , which largely limits the mass deployment of solar‐fuel production. Here, the scale‐up to 8 cm 2 of an integrated PEC (IPEC) device is demonstrated and its performance compared to a 1 cm 2 IPEC cell, using state‐of‐the‐art iridium and platinum catalysts with III–V photoabsorbers. The initial photocurrents at 1 sun are 8 and 7 mA cm −2 with degradation rates of 0.60 and 0.47 mA cm −2 day −1 , during unbiased operation for the 1 and 8 cm 2 devices, respectively. Evaluating under outdoor and indoor conditions at two U.S. National Laboratories reveals similar results, evidencing the reproducibility of this design's performance. Furthermore, the emerging degradation mechanisms during scale‐up are investigated and the knowledge gained from this work will provide feedback to the broader community, since PEC device durability is a limiting factor in its potential future deployment.
科研通智能强力驱动
Strongly Powered by AbleSci AI