Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries

There is great demand for environmental concerns and explosion hazard batteries. Rechargeable alkaline zinc batteries (RAZBs) have gained significant attention due to their exceptional characteristics such as affordability, safety features, and high theoretical gravimetric capacity. However, practic...

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Main Authors: Zhang, Jia Jun, Wong, Christelle Pau Ping, Sagadevan, Suresh, Julkapli, Nurhidayatullaili Binti Muhd, Lai, Sai Hin, Yang, Thomas Chung Kuang, Juan, Joon Ching
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Published: Elsevier 2024
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Online Access:http://eprints.um.edu.my/44310/
https://doi.org/10.1016/j.matchemphys.2023.128511
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spelling my.um.eprints.443102024-07-05T03:26:54Z http://eprints.um.edu.my/44310/ Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries Zhang, Jia Jun Wong, Christelle Pau Ping Sagadevan, Suresh Julkapli, Nurhidayatullaili Binti Muhd Lai, Sai Hin Yang, Thomas Chung Kuang Juan, Joon Ching TD Environmental technology. Sanitary engineering TP Chemical technology There is great demand for environmental concerns and explosion hazard batteries. Rechargeable alkaline zinc batteries (RAZBs) have gained significant attention due to their exceptional characteristics such as affordability, safety features, and high theoretical gravimetric capacity. However, practically RAZBs still exhibit poor capacities and limited rechargeability. In this study, copper-doped SrTiO3 (Cu-STO) was successfully synthesized via facile hydrothermal method to be used as a cathode in RAZBs. The capacity of RZABs has enhanced up to 208 mAh g-1 (0.2 A g-1) or 1.5 folds as compared to that of pristine SrTiO3. This is attributed to the presence of oxygen vacancies (Vo center dot) which facilitate the activation of redox-active sites involving Ti4+/Ti3+ and Cu2+/Cu+ ions. Moreover, the fast ions diffusion and good conductivity enable high capacity and rechargeability. Thus, RAZBs showed good rechargeability even after 1000 cycles under 1 A g-1. This provides the underlying potential of Cu-STO as cathode in RAZBs. Elsevier 2024-01-01 Article PeerReviewed Zhang, Jia Jun and Wong, Christelle Pau Ping and Sagadevan, Suresh and Julkapli, Nurhidayatullaili Binti Muhd and Lai, Sai Hin and Yang, Thomas Chung Kuang and Juan, Joon Ching (2024) Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries. Materials Chemistry and Physics, 311. ISSN 0254-0584, DOI https://doi.org/10.1016/j.matchemphys.2023.128511 <https://doi.org/10.1016/j.matchemphys.2023.128511>. https://doi.org/10.1016/j.matchemphys.2023.128511 10.1016/j.matchemphys.2023.128511
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TD Environmental technology. Sanitary engineering
TP Chemical technology
spellingShingle TD Environmental technology. Sanitary engineering
TP Chemical technology
Zhang, Jia Jun
Wong, Christelle Pau Ping
Sagadevan, Suresh
Julkapli, Nurhidayatullaili Binti Muhd
Lai, Sai Hin
Yang, Thomas Chung Kuang
Juan, Joon Ching
Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries
description There is great demand for environmental concerns and explosion hazard batteries. Rechargeable alkaline zinc batteries (RAZBs) have gained significant attention due to their exceptional characteristics such as affordability, safety features, and high theoretical gravimetric capacity. However, practically RAZBs still exhibit poor capacities and limited rechargeability. In this study, copper-doped SrTiO3 (Cu-STO) was successfully synthesized via facile hydrothermal method to be used as a cathode in RAZBs. The capacity of RZABs has enhanced up to 208 mAh g-1 (0.2 A g-1) or 1.5 folds as compared to that of pristine SrTiO3. This is attributed to the presence of oxygen vacancies (Vo center dot) which facilitate the activation of redox-active sites involving Ti4+/Ti3+ and Cu2+/Cu+ ions. Moreover, the fast ions diffusion and good conductivity enable high capacity and rechargeability. Thus, RAZBs showed good rechargeability even after 1000 cycles under 1 A g-1. This provides the underlying potential of Cu-STO as cathode in RAZBs.
format Article
author Zhang, Jia Jun
Wong, Christelle Pau Ping
Sagadevan, Suresh
Julkapli, Nurhidayatullaili Binti Muhd
Lai, Sai Hin
Yang, Thomas Chung Kuang
Juan, Joon Ching
author_facet Zhang, Jia Jun
Wong, Christelle Pau Ping
Sagadevan, Suresh
Julkapli, Nurhidayatullaili Binti Muhd
Lai, Sai Hin
Yang, Thomas Chung Kuang
Juan, Joon Ching
author_sort Zhang, Jia Jun
title Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries
title_short Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries
title_full Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries
title_fullStr Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries
title_full_unstemmed Highly effective Cu doped SrTiO3 as a cathode driven by oxygen vacancies and redox of Ti4+/Ti3+and Cu2+/Cu+ for rechargeable alkaline zinc batteries
title_sort highly effective cu doped srtio3 as a cathode driven by oxygen vacancies and redox of ti4+/ti3+and cu2+/cu+ for rechargeable alkaline zinc batteries
publisher Elsevier
publishDate 2024
url http://eprints.um.edu.my/44310/
https://doi.org/10.1016/j.matchemphys.2023.128511
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score 13.214268