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首页> 外文期刊>ACS Omega >Converting Light Energy to Chemical Energy: A New Catalytic Approach for Sustainable Environmental Remediation
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Converting Light Energy to Chemical Energy: A New Catalytic Approach for Sustainable Environmental Remediation

机译:将光能转化为化学能:可持续环境修复的新催化方法

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We report a synthetic approach to form cubic Cu_(2)O/Pd composite structures and demonstrate their use as photocatalytic materials for tandem catalysis. Pd nanoparticles were deposited onto Cu_(2)O cubes, and their tandem catalytic reactivity was studied via the reductive dehalogenation of polychlorinated biphenyls. The Pd content of the materials was gradually increased to examine its influence on particle morphology and catalytic performance. Materials were prepared at different Pd amounts and demonstrated a range of tandem catalytic reactivity. H_(2) was generated via photocatalytic proton reduction initiated by Cu_(2)O, followed by Pd-catalyzed dehalogenation using in situ generated H_(2). The results indicate that material morphology and composition and substrate steric effects play important roles in controlling the overall reaction rate. Additionally, analysis of the postreacted materials revealed that a small number of the cubes had become hollow during the photodechlorination reaction. Such findings offer important insights regarding photocatalytic active sites and mechanisms, providing a pathway toward converting light-based energy to chemical energy for sustainable catalytic reactions not typically driven via light.
机译:我们报告了形成立方Cu_(2)O / Pd复合结构的合成方法,并证明了其作为串联催化的光催化材料的用途。 Pd纳米颗粒沉积在Cu_(2)O立方体上,并通过多氯联苯的还原脱卤作用研究了其串联催化反应性。材料中的Pd含量逐渐增加,以检查其对颗粒形态和催化性能的影响。材料以不同的Pd量制备,并显示出一定范围的串联催化反应性。通过由Cu_(2)O引发的光催化质子还原产生H_(2),然后使用原位产生的H_(2)进行Pd催化的脱卤作用。结果表明,材料的形态,组成和底物的空间效应在控制总体反应速率方面起着重要作用。另外,对后反应材料的分析表明,在光脱氯反应过程中,少量的立方体变成中空的。这些发现为光催化活性位点和机理提供了重要见解,为将基于光的能量转换为化学能进行可持续的催化反应(通常不是通过光驱动)提供了途径。

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