CO2 Mitigation via Capture and Chemical Conversion in Seawater

被引:75
|
作者
Rau, Greg H. [1 ,2 ]
机构
[1] Univ Calif Santa Cruz, Inst Marine Sci, Santa Cruz, CA 95064 USA
[2] Lawrence Livermore Natl Lab, Carbon Management Program, Livermore, CA 94550 USA
关键词
CALCIUM-CARBONATE; OCEAN; DISSOLUTION; DIOXIDE; ACIDIFICATION; TECHNOLOGIES; BICARBONATE;
D O I
10.1021/es102671x
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A lab-scale seawater/mineral carbonate gas scrubber was found to remove up to 97% of CO2 in a simulated flue gas stream at ambient temperature and pressure, with a large fraction of this carbon ultimately converted to dissolved calcium bicarbonate. After full equilibration with air, up to 85% of the captured carbon was retained in solution, that is, it did not degas or precipitate. Thus, above-ground CO2 hydration and mineral carbonate scrubbing may provide a relatively simple point-source CO2 capture and storage scheme at coastal locations. Such low-tech CO2 mitigation could be especially relevant for retrofitting to existing power plants and for deployment in the developing world, the primary source of future CO2 emissions. Addition of the resulting alkaline solution to the ocean may benefit marine ecosystems that are currently threatened by acidification, while also allowing the utilization of the vast potential of the sea to safely sequester anthropogenic carbon. This approach in essence hastens Nature's own very effective but slow CO2 mitigation process; carbonate mineral weathering is a major consumer of excess atmospheric CO2 and ocean acidity on geologic times scales.
引用
收藏
页码:1088 / 1092
页数:5
相关论文
共 50 条
  • [21] Nanostructured Carbon Nitrides for CO2 Capture and Conversion
    Talapaneni, Siddulu Naidu
    Singh, Gurwinder
    Kim, In Young
    AlBahily, Khalid
    Al-Muhtaseb, Ala'a H.
    Karakoti, Ajay S.
    Tavakkoli, Ehsan
    Vinu, Ajayan
    ADVANCED MATERIALS, 2020, 32 (18)
  • [22] Combining CO2 capture and catalytic conversion to methane
    Paulina Melo Bravo
    Damien P. Debecker
    Waste Disposal & Sustainable Energy, 2019, 1 : 53 - 65
  • [23] CO2 capture and conversion: Materials, activity, and stability
    Muller, Christoph
    Macarena, Paula Abdala
    Fedorov, Alexey
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
  • [24] Integrated CO2 capture and conversion to form syngas
    Kim, Yongwook
    Lees, Eric W.
    Donde, Chaitanya
    Jewlal, Andrew M.L.
    Waizenegger, Christopher E.B.
    de Hepcée, Basil M.W.
    Simpson, Grace L.
    Valji, Akshi
    Berlinguette, Curtis P.
    Joule, 2024, 8 (11): : 3106 - 3125
  • [25] Carbonic anhydrase for CO2 capture, conversion and utilization
    Talekar, Sachin
    Jo, Byung Hoon
    Dordick, Jonathan S.
    Kim, Jungbae
    CURRENT OPINION IN BIOTECHNOLOGY, 2022, 74 : 230 - 240
  • [26] Nitrosamine formation and mitigation in blended amines for CO2 capture
    Voice, Alexander K.
    Hill, Ashley
    Fine, Nathan A.
    Rochelle, Gary T.
    INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2015, 39 : 329 - 334
  • [27] Electrochemical carbon capture processes for mitigation of CO2 emissions
    Rahimi, Mohammad
    Khurram, Aliza
    Hatton, T. Alan
    Gallant, Betar
    CHEMICAL SOCIETY REVIEWS, 2022, 51 (20) : 8676 - 8695
  • [28] Thermodynamic simulation and experimental investigation of manganese oxide (MnOx) for integrated CO2 capture and conversion via chemical looping route
    Zhao, Yunlei
    Jin, Bo
    Yao, Wenxing
    Liang, Zhiwu
    FUEL, 2023, 344
  • [29] Mixed-oxides for carbonaceous fuel conversion with integrated CO2 capture via chemical looping with oxygen uncoupling (CLOU)
    Shafiefarhood, Arya
    Galinsky, Nathan
    Li, Fanxing
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248
  • [30] CO2 capture via porous carbons
    Tarkunde, Yash
    Li, Yilun
    Tour, James
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 251