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Potential photo-switching sorbents for CO2 capture – A review

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  • Qiao, Yuanting
  • Bailey, Josh J.
  • Huang, Qi
  • Ke, Xuebin
  • Wu, Chunfei

Abstract

Porous materials with photochromic units are currently under investigation as light allows for environmentally friendly and highly energy-efficient control for gas separation and storage, chemical sensing, and drug delivery. In the application of photo-switching materials to CO2 capture, researchers have tried to endow a diversity of porous materials such as metal-organic frameworks and porous organic polymers with photo-responsive units. This review highlights photochromic units and methods used for different types of photo-responsive adsorbents of CO2 and some examples of adsorbents with photo-switching properties. These sorbents are also promising for application to direct air capture of CO2. In particular, the cost of adsorbent regeneration could be reduced by using sorbents with light-induced regeneration. The key purpose of this review is to motivate more research into photo-switching sorbents for CO2 capture with the control of capture or release by simply switching the light on and off.

Suggested Citation

  • Qiao, Yuanting & Bailey, Josh J. & Huang, Qi & Ke, Xuebin & Wu, Chunfei, 2022. "Potential photo-switching sorbents for CO2 capture – A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 158(C).
  • Handle: RePEc:eee:rensus:v:158:y:2022:i:c:s1364032122000090
    DOI: 10.1016/j.rser.2022.112079
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    References listed on IDEAS

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    1. Christian Breyer & Mahdi Fasihi & Arman Aghahosseini, 2020. "Carbon dioxide direct air capture for effective climate change mitigation based on renewable electricity: a new type of energy system sector coupling," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 25(1), pages 43-65, January.
    2. Kuramochi, Takeshi & Ramírez, Andrea & Turkenburg, Wim & Faaij, André, 2013. "Techno-economic prospects for CO2 capture from distributed energy systems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 19(C), pages 328-347.
    3. Bamdad, Hanieh & Hawboldt, Kelly & MacQuarrie, Stephanie, 2018. "A review on common adsorbents for acid gases removal: Focus on biochar," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P2), pages 1705-1720.
    4. Hasmukh A. Patel & Sang Hyun Je & Joonho Park & Dennis P. Chen & Yousung Jung & Cafer T. Yavuz & Ali Coskun, 2013. "Unprecedented high-temperature CO2 selectivity in N2-phobic nanoporous covalent organic polymers," Nature Communications, Nature, vol. 4(1), pages 1-8, June.
    5. Mikulčić, Hrvoje & Ridjan Skov, Iva & Dominković, Dominik Franjo & Wan Alwi, Sharifah Rafidah & Manan, Zainuddin Abdul & Tan, Raymond & Duić, Neven & Hidayah Mohamad, Siti Nur & Wang, Xuebin, 2019. "Flexible Carbon Capture and Utilization technologies in future energy systems and the utilization pathways of captured CO2," Renewable and Sustainable Energy Reviews, Elsevier, vol. 114(C), pages 1-1.
    6. Qianrong Fang & Zhongbin Zhuang & Shuang Gu & Robert B. Kaspar & Jie Zheng & Junhua Wang & Shilun Qiu & Yushan Yan, 2014. "Designed synthesis of large-pore crystalline polyimide covalent organic frameworks," Nature Communications, Nature, vol. 5(1), pages 1-8, December.
    7. Olajire, Abass A., 2018. "Synthesis chemistry of metal-organic frameworks for CO2 capture and conversion for sustainable energy future," Renewable and Sustainable Energy Reviews, Elsevier, vol. 92(C), pages 570-607.
    8. Zhao, Ruikai & Liu, Longcheng & Zhao, Li & Deng, Shuai & Li, Shuangjun & Zhang, Yue, 2019. "A comprehensive performance evaluation of temperature swing adsorption for post-combustion carbon dioxide capture," Renewable and Sustainable Energy Reviews, Elsevier, vol. 114(C), pages 1-1.
    9. Osama Shekhah & Youssef Belmabkhout & Zhijie Chen & Vincent Guillerm & Amy Cairns & Karim Adil & Mohamed Eddaoudi, 2014. "Made-to-order metal-organic frameworks for trace carbon dioxide removal and air capture," Nature Communications, Nature, vol. 5(1), pages 1-7, September.
    10. Azarabadi, Habib & Lackner, Klaus S., 2019. "A sorbent-focused techno-economic analysis of direct air capture," Applied Energy, Elsevier, vol. 250(C), pages 959-975.
    11. Zhu, Xuancan & Ge, Tianshu & Yang, Fan & Wang, Ruzhu, 2021. "Design of steam-assisted temperature vacuum-swing adsorption processes for efficient CO2 capture from ambient air," Renewable and Sustainable Energy Reviews, Elsevier, vol. 137(C).
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