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Integrated Perovskite/Silicon Tandems for Unassisted Water Splitting and CO2-to-Liquid Fuel Conversion

delete2026-06-12
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OA
AI
B
Bilawal Khan
M
M. Bilal Faheem
M
Md. Samim Hassan
M
Maxime Babics
K
Karthik Peramaiah
C
Chengda Ge
H
Hongyin Xia
刘江 cover
刘江 (Jiang Liu)
M
Madan Saud
Y
Yuk-Tong Cheng
A
Andrey L. Rogach
Q
Quinn Qiao
K
Kuo‐Wei Huang
S
Stefaan De Wolf *
J
Jr‐Hau He *
DOI:10.1021/acsenergylett.6c01379delete
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Abstract

Abstract

En 中文
Integrated photoelectrochemical systems offer a promising pathway to produce value-added fuels from sunlight and abundant reagents. However, practical implementation remains challenging due to insufficient operating photovoltage, charge-carrier losses at the electrode–catalyst interface, and high catalytic overpotentials. Here, we fabricate a perovskite/silicon photoanode that combines a wide-bandgap metal-halide perovskite top junction with a double-textured crystalline silicon bottom junction to increase operating photovoltage. To minimize charge-transfer losses and promote catalyst adhesion, we integrate a photoanode with a graphite layer and further functionalize it with a low-overpotential Co-doped IrRu catalyst. The integrated photoanode achieves an open-circuit voltage of 1.86 V and a current density of 19 mA cm−2 at +1.23 VRHE. During unassisted two-electrode water splitting, the system achieves a solar-to-hydrogen efficiency of 16.06% and operates for 157 h. Extending to CO2-to-formate conversion, the two-electrode device reaches an applied-bias photon-to-current efficiency of 10.08% over 60 h. Our study highlights the potential of integrated photoelectrochemical systems for efficient solar-to-fuel conversion.

Journal

ACS Energy Letters cover
ACS Energy Letters
IF:
18.2
Papers:
5.2K
Citations:
6.6W

Organization

S
syracuse university
Scholars:
942
Papers: 426
Citations: 0
K
king abdullah university of science and technology
Scholars:
1.5K
Papers: 536
Citations: 0
C
city university of hong kong
Scholars:
4.9K
Papers: 2.8K
Citations: 2
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