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GaN nano-pyramid arrays as an efficient photoelectrode for solar water splitting.

机译:GaN纳米金字塔阵列作为太阳能水分解的高效光电极。

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摘要

A prototype photoelectrode has been fabricated using a GaN nano-pyramid array structure grown on a cost-effective Si (111) substrate, demonstrating a significant improvement in performance of solar-powered water splitting compared with any planar GaN photoelectrode. Such a nano-pyramid structure leads to enhanced optical absorption as a result of a multi-scattering process which can effectively produce a reduction in reflectance. A simulation based on a finite-difference time-domain approach indicates that the nano-pyramid architecture enables incident light to be concentrated within the nano-pyramids as a result of micro-cavity effects, further enhancing optical absorption. Furthermore, the shape of the nano-pyramid further facilitates the photo-generated carrier transportation by enhancing a hole-transfer efficiency. All these features as a result of the nano-pyramid configuration lead to a large photocurrent of 1 mA cm(-2) under an illumination density of 200 mW cm(-2), with a peak incident photon-to-current conversion efficiency of 46.5% at ∼365 nm, around the band edge emission wavelength of GaN. The results presented are expected to pave the way for the fabrication of GaN based photoelectrodes with a high energy conversion efficiency of solar powered water splitting.
机译:使用生长在具有成本效益的Si(111)衬底上的GaN纳米金字塔阵列结构制造了原型光电极,与任何平面GaN光电极相比,太阳能水分解的性能得到了显着改善。这种纳米金字塔结构由于可以有效产生反射率降低的多散射过程而导致增强的光吸收。基于有限差分时域方法的仿真表明,由于微腔效应,纳米金字塔结构使入射光能够集中在纳米金字塔内,从而进一步增强了光吸收。此外,纳米金字塔的形状通过提高空穴传输效率进一步促进了光生载流子的运输。纳米金字塔结构的所有这些特征导致在200 mW cm(-2)的光照密度下产生1 mA cm(-2)的大光电流,峰值入射光子至电流转换效率为在GaN的边沿发射波长附近,在约365 nm处为46.5%。预期的结果有望为基于GaN的光电极的制造铺平道路,该结构的太阳能水分解的能量转换效率很高。

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