Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery

The application of lithium–sulfur batteries (LSBs) is immensely impeded by notorious shuttle effect, sluggish redox kinetics, and irregular Li2S deposition, which result in large polarization and rapid capacity decay. To obtain the LSBs with high energy density and fast reaction kinetics, herein, a...

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Main Authors: Li, Yanan, Deng, Yirui, Yang, Jin-Lin, Tang, Wenhao, Ge, Ben, Liu, Ruiping
Other Authors: School of Physical and Mathematical Sciences
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/171823
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-1718232023-11-09T02:28:35Z Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery Li, Yanan Deng, Yirui Yang, Jin-Lin Tang, Wenhao Ge, Ben Liu, Ruiping School of Physical and Mathematical Sciences Engineering::Chemical engineering Catalytic Effects Interlayers The application of lithium–sulfur batteries (LSBs) is immensely impeded by notorious shuttle effect, sluggish redox kinetics, and irregular Li2S deposition, which result in large polarization and rapid capacity decay. To obtain the LSBs with high energy density and fast reaction kinetics, herein, a heterostructure composed by nitrogen-deficient graphitic carbon nitride (ND-g-C3N4) and MgNCN is fabricated via a magnesiothermic denitriding technology. Lithophilic C3N4 with abundant nitrogen-deficient acts as a conductive framework, together with the sulfiphilic MgNCN, lithium-polysulfides (LiPSs) can be effectively captured followed by a regulated Li2S nucleation. Furthermore, the oxidation conversion kinetics can be accelerated as well. As expected, the LSBs with catalytic MgNCN/ND-g-C3N4 as the interlayer exhibit remarkable electrochemical performance with a discharge capacity of 650 mAh g−1 at 4 C. Meanwhile, a low capacity decay of 0.008% per cycle can be reached at 1 C after 400 cycles. Even with a high areal sulfur loading of 5.1 mg cm−2, outstanding capacity retention can be achieved at 0.5 C (64.18%) and 1 C (90.46%). The presented strategy unlocks a new way for the LSBs design with highly efficient catalyst. This work was supported by the National Natural Science Foundation of China (52272258), the Beijing Nova program (20220484214), Key R & amp; D and Transformation Projects in Qinghai Province (2021-HZ-808 and 2023-HZ-801), and Key R & amp; D and Transformation Projects in Hebei Province (21314401D), the Fundamental Research Funds for the Central Universities (2023ZKPYJD07), and the Fundamental Research Funds of China University of Mining and Technology (Beijing) - Top Innovative Talents Cultivation Funds for Doctoral Student (BBJ2023033). J.-L.Y. acknowledges support from the China Scholarship Council (no. 202006210070). 2023-11-09T02:28:35Z 2023-11-09T02:28:35Z 2023 Journal Article Li, Y., Deng, Y., Yang, J., Tang, W., Ge, B. & Liu, R. (2023). Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery. Advanced Functional Materials, 33(44), 2302267-. https://dx.doi.org/10.1002/adfm.202302267 1616-301X https://hdl.handle.net/10356/171823 10.1002/adfm.202302267 2-s2.0-85163883054 44 33 2302267 en Advanced Functional Materials © 2023 Wiley-VCH GmbH. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Chemical engineering
Catalytic Effects
Interlayers
spellingShingle Engineering::Chemical engineering
Catalytic Effects
Interlayers
Li, Yanan
Deng, Yirui
Yang, Jin-Lin
Tang, Wenhao
Ge, Ben
Liu, Ruiping
Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
description The application of lithium–sulfur batteries (LSBs) is immensely impeded by notorious shuttle effect, sluggish redox kinetics, and irregular Li2S deposition, which result in large polarization and rapid capacity decay. To obtain the LSBs with high energy density and fast reaction kinetics, herein, a heterostructure composed by nitrogen-deficient graphitic carbon nitride (ND-g-C3N4) and MgNCN is fabricated via a magnesiothermic denitriding technology. Lithophilic C3N4 with abundant nitrogen-deficient acts as a conductive framework, together with the sulfiphilic MgNCN, lithium-polysulfides (LiPSs) can be effectively captured followed by a regulated Li2S nucleation. Furthermore, the oxidation conversion kinetics can be accelerated as well. As expected, the LSBs with catalytic MgNCN/ND-g-C3N4 as the interlayer exhibit remarkable electrochemical performance with a discharge capacity of 650 mAh g−1 at 4 C. Meanwhile, a low capacity decay of 0.008% per cycle can be reached at 1 C after 400 cycles. Even with a high areal sulfur loading of 5.1 mg cm−2, outstanding capacity retention can be achieved at 0.5 C (64.18%) and 1 C (90.46%). The presented strategy unlocks a new way for the LSBs design with highly efficient catalyst.
author2 School of Physical and Mathematical Sciences
author_facet School of Physical and Mathematical Sciences
Li, Yanan
Deng, Yirui
Yang, Jin-Lin
Tang, Wenhao
Ge, Ben
Liu, Ruiping
format Article
author Li, Yanan
Deng, Yirui
Yang, Jin-Lin
Tang, Wenhao
Ge, Ben
Liu, Ruiping
author_sort Li, Yanan
title Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
title_short Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
title_full Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
title_fullStr Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
title_full_unstemmed Bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
title_sort bidirectional catalyst with robust lithiophilicity and sulfiphilicity for advanced lithium–sulfur battery
publishDate 2023
url https://hdl.handle.net/10356/171823
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