Rationalizing In Situ Active Repair in Hydrogen Evolution Photocatalysis via Non-Invasive Raman Spectroscopy

被引:4
作者
Klingler, Sarah [1 ]
Bagemihl, Benedikt [2 ]
Mengele, Alexander K. [2 ]
Kaufhold, Simon [2 ]
Myllyperkioe, Pasi [3 ]
Ahokas, Jussi [3 ,4 ]
Pettersson, Mika [3 ]
Rau, Sven [2 ]
Mizaikoff, Boris [1 ,5 ]
机构
[1] Ulm Univ, Inst Analyt & Bioanalyt Chem, Albert Einstein Allee 11, D-89081 Ulm, Germany
[2] Ulm Univ, Inst Inorgan Chem 1, Albert Einstein Allee 11, D-89081 Ulm, Germany
[3] Univ Jyvaskyla, Nanosci Ctr, Dept Chem, Jyvaskyla 40014, Finland
[4] Univ Jyvaskyla, Financial & Facil Serv, Jyvaskyla 40014, Finland
[5] Hahn Schickard, Sedanstr 4, D-89081 Ulm, Germany
关键词
Active Repair; Gas Analysis; Photocatalytic Hydrogen Production; Raman Spectroscopy; ARTIFICIAL PHOTOSYNTHESIS; MOLECULAR CATALYST; ENERGY-CONVERSION; WATER; DETERMINES; CHEMISTRY; METAL;
D O I
10.1002/anie.202306287
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Currently, most photosensitizers and catalysts used in the field of artificial photosynthesis are still based on rare earth metals and should thus be utilized as efficiently and economically as possible. While repair of an inactivated catalyst is a potential mitigation strategy, this remains a challenge. State-of-the-art methods are crucial for characterizing reaction products during photocatalysis and repair, and are currently based on invasive analysis techniques limiting real-time access to the involved mechanisms. Herein, we use an innovative in situ technique for detecting both initially evolved hydrogen and after active repair via advanced non-invasive rotational Raman spectroscopy. This facilitates unprecedently accurate monitoring of gaseous reaction products and insight into the mechanism of active repair during light-driven catalysis enabling the identification of relevant mechanistic details along with innovative repair strategies.
引用
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页数:8
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共 53 条
  • [1] A review on selected heterogeneous photocatalysts for hydrogen production
    Acar, Canan
    Dincer, Ibrahim
    Zamfirescu, Calin
    [J]. INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2014, 38 (15) : 1903 - 1920
  • [2] Ahokas J., 2013, Patent No. [2013079806A1, 2013079806]
  • [3] Artificial Photosynthesis: From Molecular Catalysts for Light-driven Water Splitting to Photoelectrochemical Cells
    Andreiadis, Eugen S.
    Chavarot-Kerlidou, Murielle
    Fontecave, Marc
    Artero, Vincent
    [J]. PHOTOCHEMISTRY AND PHOTOBIOLOGY, 2011, 87 (05) : 946 - 964
  • [4] ELECTROCHEMISTRY AND PHOTOPOTENTIALS OF PHENAZINE IN METHANOL SOLUTIONS
    BAILEY, DN
    HERCULES, DM
    ROE, DK
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1969, 116 (02) : 190 - &
  • [5] Photosynthetic energy conversion: natural and artificial
    Barber, James
    [J]. CHEMICAL SOCIETY REVIEWS, 2009, 38 (01) : 185 - 196
  • [6] Artificial photosynthesis
    Benniston, Andrew C.
    Harriman, Anthony
    [J]. MATERIALS TODAY, 2008, 11 (12) : 26 - 34
  • [7] Flow injection analysis coupled with differential electrochemical mass spectrometry for hydrogen detection and quantification
    Castro-Castillo, Carmen
    Armijo, Francisco
    Isaacs, Mauricio
    Pastor, Elena
    Garcia, Gonzalo
    [J]. ELECTROCHEMISTRY COMMUNICATIONS, 2020, 118
  • [8] Preparations and Electrochemical Characterizations of Conductive Porphyrin Polymers
    Day, Nicholas U.
    Walter, Michael G.
    Wamser, Carl C.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2015, 119 (30) : 17378 - 17388
  • [9] Artificial Photosynthesis at Efficiencies Greatly Exceeding That of Natural Photosynthesis
    Dogutan, Dilek K.
    Nocera, Daniel G.
    [J]. ACCOUNTS OF CHEMICAL RESEARCH, 2019, 52 (11) : 3143 - 3148
  • [10] Engineered and artificial photosynthesis: Human ingenuity enters the game
    Gust, Devens
    Kramer, David
    Moore, Ana
    Moore, Thomas A.
    Verrnaas, Wim
    [J]. MRS BULLETIN, 2008, 33 (04) : 383 - 387