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InGaAsP as a Promising Narrow Band Gap Semiconductor for Photoelectrochemical Water Splitting

机译:IngaAsp作为光电化学水分裂的有希望的窄带隙半导体

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While photoelectrochemical (PEC) water splitting is a very promising route toward zero-carbon energy, conversion efficiency remains limited. Semiconductors with narrower band gaps can absorb a much greater portion of the solar spectrum, thereby increasing efficiency. However, narrow band gap (similar to 1 eV) III V semiconductor photoelectrodes have not yet been thoroughly investigated. In this study, the narrow band gap quaternary III V alloy InGaAsP is demonstrated for the first time to have great potential for PEC water splitting, with the long-term goal of developing high-efficiency tandem PEC devices. TiO2-coated InGaAsP photocathodes generate a photocurrent density of over 30 mA/cm(2) with an onset potential of 0.45 V versus reversible hydrogen electrode, yielding an applied bias efficiency of over 7%. This is an excellent performance, given that nearly all power losses can be attributed to reflection losses. X-ray photoelectron spectroscopy and photoluminescence spectroscopy show that InGaAsP and TiO2 form a type-II band alignment, greatly enhancing carrier separation and reducing recombination losses. Beyond water splitting, the tunable band gap of InGaAsP could be of further interest in other areas of photocatalysis, including CO2 reduction.
机译:虽然光电化学(PEC)水分裂是零碳能量非常有前途的途径,但转换效率仍然有限。具有较窄带间隙的半导体可以吸收太阳光谱的大部分部分,从而提高了效率。然而,狭窄的带隙(类似于1eV)III V半导体光电子尚未得到彻底研究。在这项研究中,第一次对窄带隙季型III V合金IngaAsp进行了对PEC水分裂具有很大的潜力,具有开发高效串联PEC器件的长期目标。 TiO2涂覆的InGaAsp光致胶质阴离子产生超过30mA / cm(2)的光电流密度,起始电位为0.45V与可逆氢电极,产生超过7%的施加偏置效率。考虑到几乎所有功率损耗都可以归因于反射损失,这是一个出色的性能。 X射线光电子能谱和光致发光光谱表明,InGaASP和TiO2形成II型带对准,大大提高载流子分离并减少重组损失。除了水分裂之外,InGaAsp的可调带隙可能对其他光催化区域的进一步感兴趣,包括CO 2还原。

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