首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >N-N type core-shell heterojunction engineering with MoO3 over ZnO nanorod cores for enhanced solar energy harvesting application in a photoelectrochemical cell
【24h】

N-N type core-shell heterojunction engineering with MoO3 over ZnO nanorod cores for enhanced solar energy harvesting application in a photoelectrochemical cell

机译:N-N型核心外壳异质结工程与MOO3在ZnO Nanorod芯上,用于增强光电化学电池中的太阳能收集应用

获取原文
获取原文并翻译 | 示例
           

摘要

Herein, we report an easy and scalable chemical bath deposition and spin coating route of n-n hetero architecture engineering to fabricate MoO3-ZnO core-shell nanorods (NRs) based photoanode, which is indeed the first time demonstration of this particular nano-heterojunction for solar energy conversion and hydrogen energy generation in a photoelectrochemical (PEC) cell. We further tune the MoO3 shell thickness by varying spin coated layer thickness. An average thickness similar to 100 nm of MoO3 over 450 nm ZnO NRs significantly improves the photocurrent from 3.3 to 27.6 mu Acm(-2). A 7.5 fold increase in applied bias photon to current conversion efficiency (ABPE) value is achieved upon visible light illumination (Visible light, 10 mWcm(-2)) with a maximum value of 0.15% than bare ZnO NRs (0.02%). In addition, hydrogen gas (5 mu molcm(-2)) is evolved even at no external potential applied to the PEC cell with this MoO3-ZnO. The physical insight of the enhanced PEC performance is also elucidated. We find the n-n hetero-architecture to provide a suitable solution to maximize solar light absorption along with enhanced charge carrier separation which also boosts the charge transportation and mobility in the junction region due to suitable core-shell interfacial band alignment and modulation of interfacial electronic structure. Mainly, the MoO3 shell provides a potential solution to get more catalytically active sites and the outer Mo-O dipole layer transfers holes to the electrolyte for easy oxidation of water. (C) 2019 Published by Elsevier B.V.
机译:在此,我们报告了一种简单且可伸缩的化学浴沉积和旋转涂层路线的NN HETICO结构工程,用于制造基于MOO3-ZnO核心壳纳米棒(NRS)的光电码,这确实是该特定纳米异质结的第一次示范太阳能光电化学(PEC)细胞中的能量转换和氢能量产生。我们通过改变旋涂层厚度进一步调谐MOO3壳厚度。在450nm ZnO NR上的平均厚度类似于100nm的MOO3,显着改善了3.3至27.6μm(-2)的光电流。在可见光照射(可见光,10mWcm(-2))上实现施加的偏置光子至电流转化效率(ABPE)值的7.5倍倍增,最大值比裸ZnOns(0.02%)为0.15%。另外,即使在没有施加到PEC电池的外部电位下,氢气(5μmmOlcm(-2))也与该MOO3-ZnO施加到PEC电池。还阐明了增强的PEC性能的物理洞察力。我们发现NN异质架构提供了一种合适的解决方案,以使太阳光吸收以及增强的电荷载体分离以及由于合适的核心 - 壳界面对准和界面电子结构的调制来提高接合区域中的电荷运输和移动性。主要是,MOO3壳提供潜在的解决方案,以获得更催化的活性位点,外部MO-O偶极层将孔转移到电解质中,以便易于氧化水。 (c)2019年由elestvier b.v发布。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号