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  4. Reactivity of Bioinspired Magnesium-Organic Networks under CO2 and O-2 Exposure
 
research article

Reactivity of Bioinspired Magnesium-Organic Networks under CO2 and O-2 Exposure

Salinas, Daniel E. Hurtado
•
Sarasola, Ane
•
Stel, Bart  
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June 1, 2019
ACS Omega

Photosynthesis is the model system for energy conversion. It uses CO2 as a starting reactant to convert solar energy into chemical energy, i.e., organic molecules or biomass. The first and rate-determining step of this cycle is the immobilization and activation of CO2, catalyzed by RuBisCO enzyme, the most abundant protein on earth. Here, we propose a strategy to develop novel biomimetic two-dimensional (2D) nanostructures for CO2 adsorption at room temperature by reductionist mimicking of the Mg-carboxylate RuBisCO active site. We present a method to synthesize a 2D surface-supported system based on Mg2+ centers stabilized by a carboxylate environment and track their structural dynamics and reactivity under either CO2 or O-2 exposure at room temperature. The CO2 molecules adsorb temporarily on the Mg2+ centers, producing a charge imbalance that catalyzes a phase transition into a different configuration, whereas O-2 adsorbs on the Mg2+ center, giving rise to a distortion in the metal-organic bonds that eventually leads to the collapse of the structure. The combination of bioinspired synthesis and surface reactivity studies demonstrated here for Mg-based 2D ionic networks holds promise for the development of new catalysts that can work at room temperature.

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Type
research article
DOI
10.1021/acsomega.9b00762
Web of Science ID

WOS:000473361500029

Author(s)
Salinas, Daniel E. Hurtado
Sarasola, Ane
Stel, Bart  
Cometto, Fernando P.
Kern, Klaus  
Arnau, Andreprimes
Lingenfelder, Magali  
Date Issued

2019-06-01

Published in
ACS Omega
Volume

4

Issue

6

Start page

9850

End page

9859

Subjects

Chemistry, Multidisciplinary

•

Chemistry

•

total-energy calculations

•

carbon-dioxide

•

terephthalic acid

•

phase-transformations

•

active-sites

•

surface

•

adsorption

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oxygen

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xps

•

nanostructures

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LSEN  
Available on Infoscience
July 17, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/159193
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