论文标题
对氢生产的压电催化材料的高通量筛选
High-throughput screening of piezo-photocatalytic materials for hydrogen production
论文作者
论文摘要
在可见光下找到能够催化水分反应的成本效益,高效的光催化材料是当前环境材料科学的最大挑战之一。尽管许多光催化剂已经在绿色氢生产的背景下是已知的,但系统和理性地修改其光电特性以实现所需的光催化性能的策略尚未建立。压电材料通过调节其带隙和带对齐方式对机械刺激有反应,从而提供了一种可以精确光催化剂设计的途径。但是,压电量催化剂相对较少,迄今为止很少研究。在这里,我们提出了对压电催化材料的高通量筛选,该材料超过$ \ sim 1,000 $散装的压电材料,该材料依赖于简单的静电模型和第一原理计算。由于其适当的光电特性以及由单轴菌株驱动的出色的频带对齐可调性,因此总共忽略了以前被忽略的二进制二进制和第三级化合物。
Finding cost-effective and efficient photocatalytic materials able to catalyse the water splitting reaction under visible light is one of the greatest challenges in current environmental material science. Despite that many photocatalysts are already known in the context of green hydrogen production, strategies to systematically and rationally modify their optoelectronic properties to achieve desired photocatalytic performance are yet to be established. Piezoelectric materials react to mechanical stimuli by adjusting their band gaps and band alignments, thus offering a possible route to precise photocatalyst design. However, piezo-photocatalysts are relatively scarce and have been seldom investigated to date. Here, we present a high-throughput screening of piezo-photocatalytic materials performed over $\sim 1,000$ bulk piezoelectrics that relies on a simple electrostatic model and first-principles calculations. A total of $\sim 10$ previously overlooked binary and tertiary bulk compounds are theoretically identified as highly promising piezo-photocatalysts due to their appropriate optoelectronic properties and superb band alignment tunability driven by uniaxial strain.