Large-area all-perovskite-based coplanar photoelectrodes for scaled-up solar hydrogen production
- Authors
- Jeong, Wooyong; Jang, Gyumin; Yun, Juwon; Jeong, Chang-Seop; Park, Young Sun; Lee, Hyungsoo; Son, Jaehyun; Lee, Chan Uk; Lee, Jeongyoub; Lee, Junwoo; Yang, Seongyeon; Lee, Soobin; 문수빈; Moon, Jooho
- Issue Date
- May-2024
- Publisher
- ROYAL SOC CHEMISTRY
- Citation
- ENERGY & ENVIRONMENTAL SCIENCE, v.17, no.10, pp 3604 - 3617
- Pages
- 14
- Journal Title
- ENERGY & ENVIRONMENTAL SCIENCE
- Volume
- 17
- Number
- 10
- Start Page
- 3604
- End Page
- 3617
- URI
- https://yscholarhub.yonsei.ac.kr/handle/2021.sw.yonsei/23427
- DOI
- 10.1039/d4ee01167h
- ISSN
- 1754-5692
1754-5706
- Abstract
- Recently, lead halide perovskites (LHPs) have been intensively investigated for use as photoelectrodes in photoelectrochemical (PEC) water splitting systems, and PEC water splitting systems with LHP electrodes have shown outstanding solar-to-hydrogen (STH) efficiencies. Despite the significant role of large-scale deployment for practical commercialization, the fabrication of large-area LHP photoelectrodes is rarely investigated in the field of PEC water splitting. Herein, we present a strategy involving immersing an as-coated LHP film in an antisolvent containing cyclohexylammonium iodide (CHAI) for the fabrication of high-quality large-size LHP films for use in unbiased PEC water splitting. CHAI molecules accelerate nucleation kinetics by participating in the formation of an intermediate phase, resulting in uniform high-crystallinity LHP films. Furthermore, CHAI molecules effectively passivate grain boundaries, thereby increasing the photocurrent density and onset potential of PEC devices. Consequently, parallelly illuminated coplanar LHP-based photoelectrodes with dimensions of 8 cm x 8 cm could be stably operated without any applied bias, and they exhibited a record-high STH efficiency of 9.89% and a T80 (the time at which the photocurrent density drops to 80% of its initial value) of 24 h. The hydrogen production rate of our device was 145.56 mu mol h-1 cm-2, which is highly comparable with previously reported values of state-of-the-art unassisted PEC devices.,Large-scale solar hydrogen production is enabled by the treatment of perovskite films through additive-added antisolvent bathing, achieving a solar-to-hydrogen efficiency of 9.89% and an outstanding hydrogen production of 145.56 mu mol h-1 cm-2.,
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Collections - College of Engineering > 공과대학 신소재공학부 > 공과대학 신소재공학과 > 1. Journal Articles

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