Zhou Chu, Zhang Gaotian, Guo Peiyuan, Ye Chenxi, Chen Zhenjun, Ma Ziyi, Zhang Menglong, Li Jingbo
School of Engineering, University of Warwick, Coventry, United Kingdom.
Zhejiang Xinke Semiconductor Co., Ltd., Hangzhou, Zhejiang, China.
Front Chem. 2023 Dec 19;11:1326349. doi: 10.3389/fchem.2023.1326349. eCollection 2023.
The effectiveness of silicon (Si) and silicon-based materials in catalyzing photoelectrochemistry (PEC) CO reduction is limited by poor visible light absorption. In this study, we prepared two-dimensional (2D) silicon-based photonic crystals (SiPCs) with circular dielectric pillars arranged in a square array to amplify the absorption of light within the wavelength of approximately 450 nm. By investigating five sets of n + p SiPCs with varying dielectric pillar sizes and periodicity while maintaining consistent filling ratios, our findings showed improved photocurrent densities and a notable shift in product selectivity towards CH (around 25% Faradaic Efficiency). Additionally, we integrated platinum nanoparticles, which further enhanced the photocurrent without impacting the enhanced light absorption effect of SiPCs. These results not only validate the crucial role of SiPCs in enhancing light absorption and improving PEC performance but also suggest a promising approach towards efficient and selective PEC CO reduction.
硅(Si)及硅基材料在催化光电化学(PEC)CO还原方面的有效性受到可见光吸收较差的限制。在本研究中,我们制备了二维(2D)硅基光子晶体(SiPCs),其圆形介电柱按正方形阵列排列,以增强在约450纳米波长范围内的光吸收。通过研究五组具有不同介电柱尺寸和周期性但保持一致填充率的n + p SiPCs,我们的研究结果显示光电流密度有所提高,并且产物选择性显著向CH转移(法拉第效率约为25%)。此外,我们集成了铂纳米颗粒,这进一步增强了光电流,同时不影响SiPCs的增强光吸收效果。这些结果不仅验证了SiPCs在增强光吸收和改善PEC性能方面的关键作用,还提出了一种实现高效且选择性PEC CO还原的有前景的方法。