Electrochemical direct CO2 capture technology using redox-active organic molecules to achieve carbon-neutrality

被引:20
作者
Choi, Gwan Hyun [1 ,2 ]
Song, Hyun Jun [1 ]
Lee, Seolhwa [1 ,3 ]
Kim, Jeong Yoon [1 ]
Moon, Myoung-Woon [3 ,4 ,7 ]
Yoo, Pil J. [1 ,4 ,5 ,6 ,7 ]
机构
[1] Sungkyunkwan Univ SKKU, Sch Chem Engn, Suwon 16419, South Korea
[2] Korea Inst Sci & Technol KIST, Mat Architecturing Res Ctr, Seoul 02792, South Korea
[3] Korea Inst Sci & Technol KIST, Extreme Mat Res Ctr, Seoul 02792, South Korea
[4] Korea Inst Sci Technol Sungkyunkwan Univ, Carbon Neutral Res Ctr, Suwon 16419, South Korea
[5] Sungkyunkwan Univ SKKU, SKKU Adv Inst Nanotechnol SAINT, Suwon 16419, South Korea
[6] Sungkyunkwan Univ SKKU, SKKU Inst Energy Sci & Technol SIEST, Suwon 16419, South Korea
[7] Korea Inst Sci & Technol KIST Sungkyunkwan Univ SK, Carbon Neutral Res Ctr, Suwon, South Korea
基金
新加坡国家研究基金会;
关键词
Electrochemical directCO2 capture; Redox-active organic molecules; Carbon capture technology; Net-zero carbon; Carbon-neutrality; DIRECT AIR CAPTURE; ONE-ELECTRON REDUCTION; POWER-PLANTS; ENVIRONMENTAL-IMPACT; CHEMICAL FEEDSTOCK; CLIMATE-CHANGE; IONIC LIQUIDS; PILOT-PLANT; DIOXIDE; ENERGY;
D O I
10.1016/j.nanoen.2023.108512
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The global community has set an ambitious goal of achieving carbon neutrality by 2050. To achieve this goal, significant reductions in carbon dioxide emissions from human activities are required. Carbon capture tech-nology has been identified as a viable solution for addressing global energy depletion and mitigating the effects of fossil fuel consumption on climate change. Recent advances in carbon capture technique based on wet scrubbing have typically focused on increasing carbon capture efficiency. However, this approach requires extensive use of amine CO2 sorbents and high energy consumption for high temperature and pressure operation. An alternative approach is electrochemical direct carbon capture (EDCC), which allows for the capture of CO2 from diluted sources such as direct air capture (DAC) or direct ocean capture (DOC), ultimately resulting in net -zero carbon emissions. Therefore, it is crucial to design cost-effective and energy-efficient CO2 adsorbent mol-ecules for EDCC applications. In this review, we discuss recent advancements in EDCC technology and their potential for future applications, especially using organic active materials. We provide an overview of the fun-damentals of EDCC and practical strategies for demonstrating an EDCC system, including molecular design, electrolyte selection, and device configuration. We also delve into design strategies for potential redox-active organic sorbents, with a particular emphasis on understanding currently utilized material candidates from other electrochemical applications and density functional theory (DFT) calculation-guided material selection in the design principle of EDCC. In the final section, we present an opportunity for carbon neutrality utilizing electrochemically-mediated carbon capture technologies. We anticipate that approaches employing an appro-priate EDCC design will provide an innovative platform for high-performance and next-generation carbon cap-ture technologies and an opportunity for carbon neutrality.
引用
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页数:29
相关论文
共 226 条
  • [81] pH swing cycle for CO2capture electrochemically driven through proton-coupled electron transfer
    Jin, Shijian
    Wu, Min
    Gordon, Roy G.
    Aziz, Michael J.
    Kwabi, David G.
    [J]. ENERGY & ENVIRONMENTAL SCIENCE, 2020, 13 (10) : 3706 - 3722
  • [82] A Water-Miscible Quinone Flow Battery with High Volumetric Capacity and Energy Density
    Jin, Shijian
    Jing, Yan
    Kwabi, David G.
    Ji, Yunlong
    Tong, Liuchuan
    De Porcellinis, Diana
    Goulet, Marc-Antoni
    Pollack, Daniel A.
    Gordon, Roy G.
    Aziz, Michael J.
    [J]. ACS ENERGY LETTERS, 2019, 4 (06): : 1342 - 1348
  • [83] COULOMETRIC TCO2 ANALYSES FOR MARINE STUDIES - AN INTRODUCTION
    JOHNSON, KM
    KING, AE
    SIEBURTH, JM
    [J]. MARINE CHEMISTRY, 1985, 16 (01) : 61 - 82
  • [84] Ionic liquids as electrolytes for energy storage applications - A modelling perspective
    Jonsson, Erlendur
    [J]. ENERGY STORAGE MATERIALS, 2020, 25 (25) : 827 - 835
  • [85] Efficient Electrochemical CO2 Conversion Powered by Renewable Energy
    Kauffman, Douglas R.
    Thakkar, Jay
    Siva, Rajan
    Matranga, Christopher
    Ohodnicki, Paul R.
    Zeng, Chenjie
    Jin, Rongchao
    [J]. ACS APPLIED MATERIALS & INTERFACES, 2015, 7 (28) : 15626 - 15632
  • [86] Keith DW, 2018, JOULE, V2, P1573, DOI 10.1016/j.joule.2018.05.006
  • [87] Why Capture CO2 from the Atmosphere?
    Keith, David W.
    [J]. SCIENCE, 2009, 325 (5948) : 1654 - 1655
  • [88] High Energy Organic Cathode for Sodium Rechargeable Batteries
    Kim, Haegyeom
    Kwon, Ji Eon
    Lee, Byungju
    Hong, Jihyun
    Lee, Minah
    Park, Soo Young
    Kang, Kisuk
    [J]. CHEMISTRY OF MATERIALS, 2015, 27 (21) : 7258 - 7264
  • [89] Novel Shortcut Estimation Method for Regeneration Energy of Amine Solvents in an Absorption-Based Carbon Capture Process
    Kim, Huiyong
    Hwang, Sung June
    Lee, Kwang Soon
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (03) : 1478 - 1485
  • [90] Redox-Active Polymers for Energy Storage Nanoarchitectonics
    Kim, Jeonghun
    Kim, Jung Ho
    Ariga, Katsuhiko
    [J]. JOULE, 2017, 1 (04) : 739 - 768