High-Photovoltage Silicon Nanowire for Biological Cofactor Production
Article 2023 en
Authors
EL
Elizabeth Lineberry
JK
Jin‐Hyun Kim
JK
Jimin Kim
Abstract
1 min read
Photocathodic conversion of NAD<sup>+</sup> to NADH cofactor is a promising platform for activating redox biological catalysts and enzymatic synthesis using renewable solar energy. However, many photocathodes suffer from low photovoltage, consequently requiring a high cathodic bias for NADH production. Here, we report an n<sup>+</sup>p-type silicon nanowire (n<sup>+</sup>p-SiNW) photocathode having a photovoltage of 435 mV to drive energy-efficient NADH production. The enhanced band bending at the n<sup>+</sup>/p interface accounts for the high photovoltage, which conduces to a benchmark onset potential [0.393 V vs the reversible hydrogen electrode (V<sub>RHE</sub>)] for SiNW-based photocathodic NADH generation. In addition, the n<sup>+</sup>p-SiNW nanomaterial exhibits a Faradaic efficiency of 84.7% and a conversion rate of 1.63 μmol h<sup>-1</sup> cm<sup>-1</sup> at 0.2 V<sub>RHE</sub>, which is the lowest cathodic potential to achieve the maximum productivity among SiNW-sensitized cofactor production.
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