Photocatalytic Production of Hydrogen Peroxide over Modified Semiconductor Materials: A Minireview

被引:0
作者
Haiyan Song
Lishan Wei
Luning Chen
Han Zhang
Ji Su
机构
[1] Northeast Forestry University,Department of Chemistry and Chemical Engineering, College of Chemistry, Chemical Engineering and Resource Utilization
[2] Lawrence Berkeley National Laboratory,Materials Sciences Division
来源
Topics in Catalysis | 2020年 / 63卷
关键词
Hydrogen peroxide; Photocatalysis; Oxygen reduction; Semiconductors; Modification;
D O I
暂无
中图分类号
学科分类号
摘要
Hydrogen peroxide (H2O2) has exhibited huge application value in many fields including chemical synthesis, medicine, environmental remediation, and fuel cells. Traditional anthraquinone method for H2O2 commercial production has emerged the drawbacks of toxicity, H2 consumption and high energy input. Photocatalytic production of H2O2, which only requires water, oxygen, solar light and catalyst, is a novel and green technique, and potentially becomes one of the substitutes for anthraquinone method. Herein, we comprehensively review the research progress in the reported semiconductor catalysts, their modification strategies, as well as the related photocatalysis systems and mechanisms for the light driven H2O2 production. In detail, the photocatalysts are introduced from different families including ZnO, g-C3N4, TiO2, metal complexes, metal sulfides, Bi containing semiconductors, and carbon materials. In the meantime, their modification strategies are systematically evaluated aiming at the improvement in the structures and the photoelectrical properties of semiconductors, as well as their effective activation of molecular O2, and inhibition of H2O2 decomposition. Finally, this review is concluded with a brief summary and outlook, and the major challenges for the development of photocatalytic H2O2 production over the emerging semiconductor photocatalysts.
引用
收藏
页码:895 / 912
页数:17
相关论文
共 421 条
[1]  
Sato K(1998)A "Green" route to adipic acid: direct oxidation of cyclohexenes with 30 percent hydrogen peroxide Science 281 1646-1647
[2]  
Aoki M(2002)A one-step conversion of benzene to phenol with a palladium membrane Science 295 105-107
[3]  
Noyori R(2012)A membraneless hydrogen peroxide fuel cell using Prussian Blue as cathode material Energy Environ Sci 5 8225-8228
[4]  
Niwa S-i(2017)Production of liquid solar fuels and their use in fuel cells Joule 1 689-738
[5]  
Eswaramoorthy M(2016)Artificial photosynthesis for production of hydrogen peroxide and its fuel cells Biochim Biophys Acta 1857 604-611
[6]  
Nair J(2006)Hydrogen peroxide synthesis: an outlook beyond the anthraquinone process Angew Chem Int Ed 45 6962-6984
[7]  
Raj A(2019)Production of hydrogen peroxide through photocatalytic processes: a critical review of recent advances Angew Chem Int Ed 346 1051-1071
[8]  
Itoh N(2004)Organocatalytic oxidations mediated by nitroxyl radicals Adv Synth Catal 25 613-627
[9]  
Shoji H(1995)Processes for the production of mixtures of caustic soda and hydrogen peroxide via the reduction of oxygen J Appl Electrochem 236 69-79
[10]  
Namba T(2005)Direct synthesis of hydrogen peroxide from H J Catal 139 104-109