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Dufils, Thomas
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Zhang, L., Kühling, F., Mattsson, A.-M., Knijff, L., Hou, X., Ek, G., . . . Berg, E. J. (2024). Reversible Hydration Enabling High-Rate Aqueous Li-Ion Batteries. ACS Energy Letters, 9, 959-966
Öppna denna publikation i ny flik eller fönster >>Reversible Hydration Enabling High-Rate Aqueous Li-Ion Batteries
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2024 (Engelska)Ingår i: ACS Energy Letters, E-ISSN 2380-8195, Vol. 9, s. 959-966Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Layered TiS2 has been proposed as a versatile host material for various battery chemistries. Nevertheless, its compatibility with aqueous electrolytes has not been thoroughly understood. Herein, we report on a reversible hydration process to account for the electrochemical activity and structural evolution of TiS2 in a relatively dilute electrolyte for sustainable aqueous Li-ion batteries. Solvated water molecules intercalate in TiS2 layers together with Li+ cations, forming a hydrated phase with a nominal formula unit of Li0.38(H2O)2−δTiS2 as the end-product. We unambiguously confirm the presence of two layers of intercalated water by complementary electrochemical cycling, operando structural characterization, and computational simulation. Such a process is fast and reversible, delivering 60 mAh g–1 discharge capacity at a current density of 1250 mA g–1. Our work provides further design principles for high-rate aqueous Li-ion batteries based on reversible water cointercalation.

Ort, förlag, år, upplaga, sidor
American Chemical Society (ACS), 2024
Nationell ämneskategori
Materialkemi Annan elektroteknik och elektronik
Identifikatorer
urn:nbn:se:uu:diva-524300 (URN)10.1021/acsenergylett.4c00224 (DOI)001167199600001 ()
Forskningsfinansiär
Forskningsrådet Formas, 2019-02496Vetenskapsrådet, 2016-04069Vetenskapsrådet, 2022-03856Vetenskapsrådet, 2018-07152Energimyndigheten, 50119-1Vinnova, 2018-04969Knut och Alice Wallenbergs Stiftelse, 2017.0204Stiftelsen för strategisk forskning (SSF), FFL18-0269StandUp
Tillgänglig från: 2024-03-01 Skapad: 2024-03-01 Senast uppdaterad: 2024-03-04Bibliografiskt granskad
Dufils, T., Knijff, L., Shao, Y. & Zhang, C. (2023). PiNNwall: Heterogeneous Electrode Models from Integrating Machine Learning and Atomistic Simulation. Journal of Chemical Theory and Computation, 19(15), 5199-5209
Öppna denna publikation i ny flik eller fönster >>PiNNwall: Heterogeneous Electrode Models from Integrating Machine Learning and Atomistic Simulation
2023 (Engelska)Ingår i: Journal of Chemical Theory and Computation, ISSN 1549-9618, E-ISSN 1549-9626, Vol. 19, nr 15, s. 5199-5209Artikel i tidskrift (Refereegranskat) Published
Abstract [en]

Electrochemical energy storage always involves the capacitive process. The prevailing electrode model used in the molecular simulation of polarizable electrode–electrolyte systems is the Siepmann–Sprik model developed for perfect metal electrodes. This model has been recently extended to study the metallicity in the electrode by including the Thomas–Fermi screening length. Nevertheless, a further extension to heterogeneous electrode models requires introducing chemical specificity, which does not have any analytical recipes. Here, we address this challenge by integrating the atomistic machine learning code (PiNN) for generating the base charge and response kernel and the classical molecular dynamics code (MetalWalls) dedicated to the modeling of electrochemical systems, and this leads to the development of the PiNNwall interface. Apart from the cases of chemically doped graphene and graphene oxide electrodes as shown in this study, the PiNNwall interface also allows us to probe polarized oxide surfaces in which both the proton charge and the electronic charge can coexist. Therefore, this work opens the door for modeling heterogeneous and complex electrode materials often found in energy storage systems.

Ort, förlag, år, upplaga, sidor
American Chemical Society (ACS), 2023
Nationell ämneskategori
Teoretisk kemi
Identifikatorer
urn:nbn:se:uu:diva-510937 (URN)10.1021/acs.jctc.3c00359 (DOI)001033844500001 ()37477645 (PubMedID)
Forskningsfinansiär
EU, Horisont 2020, 949012Vetenskapsrådet, 2022-06725
Tillgänglig från: 2023-09-13 Skapad: 2023-09-13 Senast uppdaterad: 2024-12-09Bibliografiskt granskad
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