CO2 conversion to solar fuels and chemicals: Opening the new paths

被引:7
作者
Centi, Future Gabriele [1 ]
Ampelli, Claudio [1 ]
机构
[1] Univ Messina, Dept Chem Biol Pharmaceut & Environm Sci ChiBioFar, ER Aisbl, Vle F Stagno Dalcontres 31, I-98166 Messina, Italy
来源
JOURNAL OF ENERGY CHEMISTRY | 2024年 / 91卷
关键词
Solar fuels; Artificial leaf; PEC devices; PV-EC devices; Cell engineering; green H 2; Chemicals from the air; ELECTROCATALYTIC CONVERSION; AMMONIA; WATER; ELECTROREDUCTION; ELECTROLYTE; REDUCTION; CATALYSIS; PRODUCTS; DESIGN; ENERGY;
D O I
10.1016/j.jechem.2024.01.021
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
This future article discusses the new prospects and directions of CO(2 )conversion via the photo-electrocatalytic (PEC) route. The second (2nd) generation solar fuels and chemicals (SFs) are generated directly in PEC systems via electrons/protons reactions without forming molecular H(2 )as an intermediate, overcoming the thermodynamics limitations and practical issues encountered for electro-fuels produced by multistep thermocatalytic processes (i.e. CO2 conversion with H-2 coming from water electrolysis). A distributed and decentralized production of SFs requires very compact, highly integrated, and intensified technologies. Among the existing reactors of advanced design (based on artificial leaves or photosynthesis), the integrated photovoltaic plus electrocatalytic (PV-EC) device is the only system (demonstrated at large scale) to produce SFs with high solar-to-fuel (STF) efficiency. However, while the literature indicates STF efficiency as the main (and only) measure of process performance, we remark here the need to refer to productivity (in terms of current density) and make tests with reliable flow PEC systems (with electrodes of at least 5-10 cm(2)) to accelerate the scaling-up process. Using approaches that minimize downstream separation costs is also mandatory. Many limitations exist in PEC systems, but most can be overcome by proper electrode and cell engineering, thus going beyond the properties of the electrocatalysts. As examples of current developments, we present the progress of (i) artificial leaf/tree devices for green H-2 distributed production and (ii) a PEC device producing the same chemicals at both cathode and anode parts without downstream operations for green solvent distributed production. Based on these developments, future directions, such as producing fertilizers and food components from the air, are outlined. The aim is to provide new ideas and research directions from a personal perspective. (c) 2024 Science Press and Dalian Institute of Chemical Physics, Chinese Academy of Sciences. Published by ELSEVIER B.V. and Science Press. All rights reserved.
引用
收藏
页码:680 / 683
页数:4
相关论文
共 49 条
  • [1] Electrocatalytic conversion of CO2 to produce solar fuels in electrolyte or electrolyte-less configurations of PEC cells
    Ampelli, C.
    Genovese, C.
    Marepally, B. C.
    Papanikolaou, G.
    Perathoner, S.
    Centi, G.
    [J]. FARADAY DISCUSSIONS, 2015, 183 : 125 - 145
  • [2] Electrode and cell design for CO2 reduction: A viewpoint
    Ampelli, Claudio
    Tavella, Francesco
    Giusi, Daniele
    Ronsisvalle, Angela Mercedes
    Perathoner, Siglinda
    Centi, Gabriele
    [J]. CATALYSIS TODAY, 2023, 421
  • [3] An artificial leaf device built with earth-abundant materials for combined H2 production and storage as formate with efficiency > 10%
    Ampelli, Claudio
    Giusi, Daniele
    Miceli, Matteo
    Merdzhanova, Tsvetelina
    Smirnov, Vladimir
    Chime, Ugochi
    Astakhov, Oleksandr
    Martin, Antonio Jose
    Veenstra, Florentine Louise Petronella
    Pineda, Felipe Andres Garces
    Gonzalez-Cobos, Jesus
    Garcia-Tecedor, Miguel
    Gimenez, Sixto
    Jaegermann, Wolfram
    Centi, Gabriele
    Perez-Ramirez, Javier
    Galan-Mascaros, Jose Ramon
    Perathoner, Siglinda
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2023, 16 (04) : 1644 - 1661
  • [4] Electrode design for ammonia synthesis
    Ampelli, Claudio
    [J]. NATURE CATALYSIS, 2020, 3 (05) : 420 - 421
  • [5] Synthesis of solar fuels by a novel photoelectrocatalytic approach
    Ampelli, Claudio
    Centi, Gabriele
    Passalacqua, Rosalba
    Perathoner, Siglinda
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2010, 3 (03) : 292 - 301
  • [6] Towards Artificial Leaves for Solar Hydrogen and Fuels from Carbon Dioxide
    Bensaid, Samir
    Centi, Gabriele
    Garrone, Edoardo
    Perathoner, Siglinda
    Saracco, Guido
    [J]. CHEMSUSCHEM, 2012, 5 (03) : 500 - 521
  • [7] Challenges in unconventional catalysis*
    Bogaerts, Annemie
    Centi, Gabriele
    Hessel, Volker
    Rebrov, Evgeny
    [J]. CATALYSIS TODAY, 2023, 420
  • [8] Rethinking chemical production with "green" hydrogen
    Centi, Gabriele
    Perathoner, Siglinda
    [J]. PURE AND APPLIED CHEMISTRY, 2024, 96 (04) : 471 - 477
  • [9] Centi G, 2024, GREEN CHEM, V26, P15, DOI [10.1039/d3gc02135a, 10.1039/D3GC02135A]
  • [10] Electrocatalytic conversion of CO2 to long carbon-chain hydrocarbons
    Centi, Gabriele
    Perathoner, Siglinda
    Wine, Gauthier
    Gangeri, Miriam
    [J]. GREEN CHEMISTRY, 2007, 9 (06) : 671 - 678