纳米线
光电化学
化学
纳米颗粒
能量转换
法拉第效率
光电化学电池
纳米技术
硅
能量转换效率
铜
光电子学
电化学
电极
材料科学
物理
热力学
电解质
物理化学
有机化学
作者
Inwhan Roh,Sunmoon Yu,Chung-Kuan Lin,Sheena Louisia,Stefano Cestellos-Blanco,Peidong Yang
摘要
The development of photoelectrochemical systems for converting CO2 into chemical feedstocks offers an attractive strategy for clean energy storage by directly utilizing solar energy, but selectivity and stability for these systems have thus been limited. Here, we interface silicon nanowire (SiNW) photocathodes with a copper nanoparticle (CuNP) ensemble to drive efficient photoelectrochemical CO2 conversion to multicarbon products. This integrated system enables CO2-to-C2H4 conversion with faradaic efficiency approaching 25% and partial current densities above 2.5 mA/cm2 at −0.50 V vs RHE, while the nanowire photocathodes deliver 350 mV of photovoltage under 1 sun illumination. Under 50 h of continual bias and illumination, CuNP/SiNW can sustain stable photoelectrochemical CO2 reduction. These results demonstrate the nanowire/catalyst system as a powerful modular platform to achieve stable photoelectrochemical CO2 reduction and the feasibility to facilitate complex reactions toward multicarbons using generated photocarriers.
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