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Spontaneous solar water splitting with decoupling of light absorption and electrocatalysis using silicon back-buried junction

Engineering and Technology

Spontaneous solar water splitting with decoupling of light absorption and electrocatalysis using silicon back-buried junction

H. Fu, P. Varadhan, et al.

Discover the innovative back-buried junction (BBJ) photoelectrochemical (PEC) cell design, achieving over 95% light harvesting, developed by Hui-Chun Fu, Purushothaman Varadhan, Chun-Ho Lin, and Jr-Hau He. This groundbreaking research enables highly efficient solar water splitting with impressive hydrogen generation rates.

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Abstract
Converting sunlight into a storable form of energy by spontaneous water splitting is of great interest but the difficulty in simultaneous management of optical, electrical, and catalytic properties has limited the efficiency of photoelectrochemical (PEC) devices. Herein, we implemented a decoupling scheme of light harvesting and electrocatalysis by employing a back-buried junction (BBJ) PEC cell design, which enables >95% front side light-harvesting, whereas the electrochemical reaction in conjunction with carrier separation/transport/collection occurs on the back side of the PEC cell. The resultant silicon BBJ-PEC half-cell produces a current density of 40.51 mA cm−2 for hydrogen evolution by minimizing optical, electrical, and catalytic losses (as low as 6.11, 1.76, and 1.67 mA cm−2, respectively). Monolithic fabrication also enables three BBJ-PEC cells to be connected in series as a single module, enabling unassisted solar water-splitting with a solar-to-hydrogen conversion efficiency of 15.62% and a hydrogen generation rate of 240 µg cm−2 h−1.
Publisher
Nature Communications
Published On
Aug 06, 2020
Authors
Hui-Chun Fu, Purushothaman Varadhan, Chun-Ho Lin, Jr-Hau He
Tags
photoelectrochemical cell
solar water splitting
hydrogen evolution
light harvesting
silicon
energy efficiency
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