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Ladder Mechanisms of Ion Transport in Prussian Blue Analogues

Nordstrand, Johan (författare)
KTH,Material- och nanofysik
Toledo-Carrillo, Esteban Alejandro (författare)
KTH,Tillämpad fysik
Vafakhah, Sareh (författare)
Singapore Univ Technol & Design, Pillar Engn Prod Dev, Singapore 487372, Singapore.
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Guo, Lu (författare)
Singapore Univ Technol & Design, Pillar Engn Prod Dev, Singapore 487372, Singapore.
Yang, Hui Ying (författare)
Singapore Univ Technol & Design, Pillar Engn Prod Dev, Singapore 487372, Singapore.
Kloo, Lars (författare)
KTH,Tillämpad fysikalisk kemi
Dutta, Joydeep, Professor, 1964- (författare)
KTH,Material- och nanofysik
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 (creator_code:org_t)
2021-12-22
2022
Engelska.
Ingår i: ACS Applied Materials and Interfaces. - : American Chemical Society (ACS). - 1944-8244 .- 1944-8252. ; 14:1, s. 1102-1113
  • Tidskriftsartikel (refereegranskat)
Abstract Ämnesord
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  • Prussian blue (PB) and its analogues (PBAs) are drawing attention as promising materials for sodium-ion batteries and other applications, such as desalination of water. Because of the possibilities to explore many analogous materials with engineered, defect-rich environments, computational optimization of ion-transport mechanisms that are key to the device performance could facilitate real-world applications. In this work, we have applied a multiscale approach involving quantum chemistry, self-consistent mean-field theory, and finite-element modeling to investigate ion transport in PBAs. We identify a cyanide-mediated ladder mechanism as the primary process of ion transport. Defects are found to be impermissible to diffusion, and a random distribution model accurately predicts the impact of defect concentrations. Notably, the inclusion of intermediary local minima in the models is key for predicting a realistic diffusion constant. Furthermore, the intermediary landscape is found to be an essential difference between both the intercalating species and the type of cation doping in PBAs. We also show that the ladder mechanism, when employed in multiscale computations, properly predicts the macroscopic charging performance based on atomistic results. In conclusion, the findings in this work may suggest the guiding principles for the design of new and effective PBAs for different applications.

Ämnesord

NATURVETENSKAP  -- Kemi -- Materialkemi (hsv//swe)
NATURAL SCIENCES  -- Chemical Sciences -- Materials Chemistry (hsv//eng)

Nyckelord

capacitive deionization
finite element
multiscale modeling
Prussian blue analogues
self-consistent mean-field theory
quantum chemistry

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