Direct Air Capture of CO2 Using Solvents

被引:37
|
作者
Custelcean, Radu [1 ]
机构
[1] Oak Ridge Natl Lab, Div Chem Sci, Oak Ridge, TN 37830 USA
关键词
carbon dioxide removal; negative emissions technologies; alkaline base; aqueous solvent; amino acid; AMINO-ACIDS; CARBON CAPTURE; CRYSTALLIZATION; ABSORPTION; KINETICS; ENERGY; SALT;
D O I
10.1146/annurev-chembioeng-092120-023936
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Large-scale deployment of negative emissions technologies (NETs) that permanently remove CO2 from the atmosphere is now considered essential for limiting the global temperature increase to less than 2 degrees C by the end of this century. One promising NET is direct air capture (DAC), a technology that employs engineered chemical processes to remove atmospheric carbon dioxide, potentially at the scale of billions of metric tons per year. This review highlights one of the two main approaches to DAC based on aqueous solvents. The discussion focuses on different aspects of DAC with solvents, starting with the fundamental chemistry that includes the chemical species and reactions involved and the thermodynamics and kinetics of CO2 binding and release. Chemical engineering aspects are also discussed, including air-liquid contactor design, process development, and technoeconomic assessments to estimate the cost of the DAC technologies. Various solvents employed in DAC are reviewed, from aqueous alkaline solutions (NaOH, KOH) to aqueous amines, amino acids, and peptides, along with different solvent regeneration methods, from the traditional thermal swinging to the more exploratory carbonate crystallization with guanidines or electrochemical methods.
引用
收藏
页码:217 / 234
页数:18
相关论文
共 50 条
  • [31] Direct Air Capture of CO2 Using Amine/Alumina Sorbents at Cold Temperature
    Priyadarshini, Pranjali
    Rim, Guanhe
    Rosu, Cornelia
    Song, MinGyu
    Jones, Christopher W.
    ACS ENVIRONMENTAL AU, 2023, 3 (05): : 295 - 307
  • [32] Direct air capture of CO2 in the Republic of Ireland. Is it necessary?
    Casaban, Daniel
    Tsalaporta, Elena
    ENERGY REPORTS, 2022, 8 : 10449 - 10463
  • [33] Integration of thermochemical water splitting with CO2 direct air capture
    Brady, Casper
    Davis, Mark E.
    Xu, Bingjun
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2019, 116 (50) : 25001 - 25007
  • [34] Moisture-driven CO2 pump for direct air capture
    Wade, Jennifer L.
    Marques, Horacio Lopez
    Wang, Winston
    Flory, Justin
    Freeman, Benny
    JOURNAL OF MEMBRANE SCIENCE, 2023, 685
  • [35] A novel contactor for reducing the cost of direct air capture of CO2
    Tegeler, Ed
    Cui, Yanran
    Masoudi, Mansour
    Bahmanpour, Ali M.
    Colbert, Tyler
    Hensel, Jacob
    Balakotaiah, Vemuri
    CHEMICAL ENGINEERING SCIENCE, 2023, 281
  • [36] Nanosilica polyamidoamine dendrimers for enhanced direct air CO2 capture
    Kulkarni, Vaishnavi
    Parthiban, Jayashree
    Singh, Sanjay Kumar
    NANOSCALE, 2024, 16 (35) : 16571 - 16581
  • [37] Electrochemical Conversion of CO2 from Direct Air Capture Solutions
    Gutierrez-Sanchez, Oriol
    de Mot, Bert
    Daems, Nick
    Bulut, Metin
    Vaes, Jan
    Pant, Deepak
    Breugelmans, Tom
    ENERGY & FUELS, 2022, 36 (21) : 13115 - 13123
  • [38] Promoting CO2 Release from CO3 2--Containing Solvents during Water Electrolysis for Direct Air Capture
    Gao, Xin
    Omosebi, Ayokunle
    Perrone, Roger
    Liu, Kunlei
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2022, 169 (04)
  • [39] Review on the direct air CO2 capture by microalgae: Bibliographic mapping
    Maghzian, Ali
    Aslani, Alireza
    Zahedi, Rahim
    ENERGY REPORTS, 2022, 8 : 3337 - 3349
  • [40] Direct air capture of CO2 with aqueous peptides and crystalline guanidines
    Custelcean, Radu
    Garrabrant, Kathleen A.
    Agullo, Pierrick
    Williams, Neil J.
    CELL REPORTS PHYSICAL SCIENCE, 2021, 2 (04):