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Improved performance and stability of photoelectrochemical water-splitting Si system using a bifacial design to decouple light harvesting and electrocatalysis

机译:使用双翼设计改进光电化学水分解SI系统的性能和稳定性,使光收获和电常分分离

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摘要

Photoelectrochemical (PEC) splitting of water into hydrogen and oxygen is a promising way for the production of clean, and storable form of fuel but the PEC efficiency has remained low. Herein, we demonstrate enhanced light harvesting, charge carrier separation/transfer, and catalyst management with bifacial design for the Si-based photocathodes to achieve best-in-class hydrogen generation with excellent electrochemical stability. Decoupling the light harvesting side from the electrocatalytic surface nullifies parasitic light absorption and enables Si photocathodes that exhibit a photocurrent density of 39.01 mA/cm(2) and stability over 370 h in 1 M H2SO4(aq) electrolyte due to fully covered a 15 nm Pt without any intentional protective layer. Furthermore, the bifacial Si photocathode system with semi-transparent Pt layer of 5 nm developed herein are capable of collecting sunlight not only on the light harvesting side but also on the back side of the device, resulting in a photocurrent density of 61.20 mA/cm(2) under bifacial two-sun illumination, which yields 56.88% of excess hydrogen when compared to the monofacial PEC system. Combining the bifacial design with surface texturing and antireflection coating enables excellent omnidirectional light harvesting capability with a record hydrogen (photocurrent) generation, which provides a promising way to realize practical PEC water splitting applications.
机译:光电化学(PEC)水分成水中的氢气和氧气是一种有希望的清洁和可存储的燃料形式的通用方式,但PEC效率保持低。在此,我们证明了具有基于Si基光电离区的双因素设计的增强的光收集,电荷载体分离/转移和催化剂管理,以实现具有优异的电化学稳定性的最佳氢气产生。从电催化表面去耦的光收集侧无寄生光吸收,使得由于完全覆盖15nm,在1M H 2 SO 4(AQ)电解质中具有39.01mA / cm(2)的光电流密度的Si光电病于370小时,并且由于完全覆盖15nm没有任何有意的保护层。此外,本文开发的具有半透明PT层的双透明PT层的双透明PT层的光电阴极系统不仅能够收集阳光,而且能够在装置的背面上收集阳光,导致光电流密度为61.20mA / cm (2)在双阳光照明下,与单型PEC系统相比,产生56.88%的过量氢。将双翼形设计与表面纹理和抗反射涂层相结合,使得具有优异的全向光收集能力,具有创氢(光电流)产生,这提供了实现实用PEC水分裂应用的有希望的方法。

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