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Breakthrough Zn(II) Catalyst for Direct Air Capture Employing CO2Hydration

  • Priyabrata Biswal
  • , Moushumi Sarma
  • , Xin Gao
  • , Saloni Bhatnagar
  • , Sean Parkin
  • , Kunlei Liu
  • , Jesse Thompson

Producción científica: Articlerevisión exhaustiva

Resumen

Direct air capture (DAC) represents a vital technology for atmospheric CO2 remediation, but few studies have tested catalysts at dilute atmospheric CO2 concentrations. Inspired by the carbonic anhydrase metalloenzyme, we report a catalytic DAC strategy employing robust zinc(II) enzyme mimics that enable efficient CO2 sequestration pathways. A catalyst-mediated CO2 hydration cycle in aqueous sorbents facilitates accelerated capture from dilute atmospheric air, thereby addressing the kinetic limitations observed in carbonate-based systems. Our developed complexes [ZnC1] and [ZnC2] enhance capture rates up to 2-fold at millimolar concentrations and improve the CO2 mass transfer by 40–60% in 1 M K2CO3 sorbent under ambient conditions. These bench-stable, earth-abundant zinc catalysts operate effectively under dilute CO2 concentrations, overcoming the kinetic limitations of conventional carbonate-based sorbents. Mechanistic studies support a biomimetic catalytic cycle that facilitates rapid CO2 conversion, demonstrating that a catalyst-assisted DAC can enable energy-efficient, scalable carbon capture technologies.

Idioma originalEnglish
Páginas (desde-hasta)5221-5232
Número de páginas12
PublicaciónEnergy and Fuels
Volumen40
N.º10
DOI
EstadoPublished - mar 12 2026

Nota bibliográfica

Publisher Copyright:
© 2026 The Authors. Published by American Chemical Society

Financiación

This material is based upon work partially supported by the Department of Energy under award number DE-FE0032255. Support was also received from the PPL Corporation, TotalEnergies, and the Electric Power Research Institute (EPRI).

FinanciadoresNúmero del financiador
Electric Power Research Institute, Louisville Gas & Electric
Total S.A.
PPL Corporation
U.S. Department of EnergyDE-FE0032255

    ASJC Scopus subject areas

    • General Chemical Engineering
    • Fuel Technology
    • Energy Engineering and Power Technology

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