Water as a Modifier in a Hybrid Coordination Network Glass

Author:

Sørensen Søren S.1ORCID,Ren Xiangting1ORCID,Du Tao1ORCID,Traverson Ayoub12,Xi Shibo3ORCID,Jensen Lars R.4ORCID,Bauchy Mathieu5ORCID,Horike Satoshi6ORCID,Wang John7ORCID,Smedskjaer Morten M.1ORCID

Affiliation:

1. Department of Chemistry and Bioscience Aalborg University Aalborg 9220 Denmark

2. Chemistry DER University Paris‐Saclay, ENS Paris‐Saclay Gif‐Sur‐Yvette 91190 France

3. Institute of Chemical & Engineering Sciences Technology and Research (A*STAR) Singapore 627833 Singapore

4. Department of Materials and Production Aalborg University Aalborg 9220 Denmark

5. Department of Civil and Environmental Engineering University of California Los Angeles CA 90095 USA

6. Institute for Integrated Cell‐Material Sciences Institute for Advanced Study Kyoto University Kyoto 606‐8501 Japan

7. Department of Materials Science and Engineering National University of Singapore Singapore 117574 Singapore

Abstract

AbstractChemical diversification of hybrid organic–inorganic glasses remains limited, especially compared to traditional oxide glasses, for which property tuning is possible through addition of weakly bonded modifier cations. In this work, it is shown that water can depolymerize polyhedra with labile metal–ligand bonds in a cobalt‐based coordination network, yielding a series of nonstoichiometric glasses. Calorimetric, spectroscopic, and simulation studies demonstrate that the added water molecules promote the breakage of network bonds and coordination number changes, leading to lower melting and glass transition temperatures. These structural changes modify the physical and chemical properties of the melt‐quenched glass, with strong parallels to the “modifier” concept in oxides. It is shown that this approach also applies to other transition metal‐based coordination networks, and it will thus enable diversification of hybrid glass chemistry, including nonstoichiometric glass compositions, tuning of properties, and a significant rise in the number of glass‐forming hybrid systems by allowing them to melt before thermal decomposition.

Funder

China Scholarship Council

National Research Foundation Singapore

National Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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