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共催化剂在光催化和光电催化中的作用。

Roles of cocatalysts in photocatalysis and photoelectrocatalysis.

机构信息

State Key Laboratory of Catalysis, Dalian Institute of Chemical Physics, Chinese Academy of Sciences and Dalian National Laboratory for Clean Energy, 457 Zhongshan Road, Dalian 116023, China.

出版信息

Acc Chem Res. 2013 Aug 20;46(8):1900-9. doi: 10.1021/ar300227e. Epub 2013 Mar 26.

Abstract

Since the 1970s, splitting water using solar energy has been a focus of great attention as a possible means for converting solar energy to chemical energy in the form of clean and renewable hydrogen fuel. Approaches to solar water splitting include photocatalytic water splitting with homogeneous or heterogeneous photocatalysts, photoelectrochemical or photoelectrocatalytic (PEC) water splitting with a PEC cell, and electrolysis of water with photovoltaic cells coupled to electrocatalysts. Though many materials are capable of photocatalytically producing hydrogen and/or oxygen, the overall energy conversion efficiency is still low and far from practical application. This is mainly due to the fact that the three crucial steps for the water splitting reaction: solar light harvesting, charge separation and transportation, and the catalytic reduction and oxidation reactions, are not efficient enough or simultaneously. Water splitting is a thermodynamically uphill reaction, requiring transfer of multiple electrons, making it one of the most challenging reactions in chemistry. This Account describes the important roles of cocatalysts in photocatalytic and PEC water splitting reactions. For semiconductor-based photocatalytic and PEC systems, we show that loading proper cocatalysts, especially dual cocatalysts for reduction and oxidation, on semiconductors (as light harvesters) can significantly enhance the activities of photocatalytic and PEC water splitting reactions. Loading oxidation and/or reduction cocatalysts on semiconductors can facilitate oxidation and reduction reactions by providing the active sites/reaction sites while suppressing the charge recombination and reverse reactions. In a PEC water splitting system, the water oxidation and reduction reactions occur at opposite electrodes, so cocatalysts loaded on the electrode materials mainly act as active sites/reaction sites spatially separated as natural photosynthesis does. In both cases, the nature of the loaded cocatalysts and their interaction with the semiconductor through the interface/junction are important. The cocatalyst can provide trapping sites for the photogenerated charges and promote the charge separation, thus enhancing the quantum efficiency; the cocatalysts could improve the photostability of the catalysts by timely consuming of the photogenerated charges, particularly the holes; most importantly, the cocatalysts catalyze the reactions by lowering the activation energy. Our research shows that loading suitable dual cocatalysts on semiconductors can significantly increase the photocatalytic activities of hydrogen and oxygen evolution reactions, and even make the overall water splitting reaction possible. All of these findings suggest that dual cocatalysts are necessary for developing highly efficient photocatalysts for water splitting reactions.

摘要

自 20 世纪 70 年代以来,利用太阳能分解水一直是人们关注的焦点,因为它是将太阳能转化为清洁可再生氢气燃料的一种有潜力的方法。太阳能分解水的方法包括均相或多相光催化剂的光催化水分解、PEC 池的光电化学或光电催化(PEC)水分解以及与电催化剂结合的光伏电池的水电解。尽管许多材料都能够光催化产生氢气和/或氧气,但整体能量转换效率仍然较低,远未达到实际应用的水平。这主要是因为水分解反应的三个关键步骤:太阳光的捕获、电荷的分离和输运以及催化还原和氧化反应,效率不够高或不能同时进行。水分解是一个热力学上坡反应,需要转移多个电子,这使得它成为化学中最具挑战性的反应之一。本账户描述了共催化剂在光催化和 PEC 水分解反应中的重要作用。对于基于半导体的光催化和 PEC 系统,我们表明,在半导体(作为光收集器)上加载适当的共催化剂,特别是用于还原和氧化的双共催化剂,可以显著提高光催化和 PEC 水分解反应的活性。在半导体上加载氧化和/或还原共催化剂可以通过提供活性位点/反应位点来促进氧化和还原反应,同时抑制电荷复合和逆反应。在 PEC 水分解系统中,水的氧化和还原反应发生在相反的电极上,因此加载在电极材料上的共催化剂主要作为自然光合作用那样的空间分离的活性位点/反应位点发挥作用。在这两种情况下,加载的共催化剂的性质及其通过界面/结与半导体的相互作用都很重要。共催化剂可以为光生电荷提供捕获位点,并促进电荷分离,从而提高量子效率;共催化剂可以通过及时消耗光生电荷来提高催化剂的光稳定性,特别是空穴;最重要的是,共催化剂通过降低活化能来催化反应。我们的研究表明,在半导体上加载合适的双共催化剂可以显著提高氢气和氧气析出反应的光催化活性,甚至使整个水分解反应成为可能。所有这些发现表明,对于开发高效的水分解反应光催化剂,双共催化剂是必要的。

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