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Performance improvement of poly(acrylic acid) binder-based silicon/graphite composite anodes by room temperature electron beam irradiation-induced crosslinking
In this study, we demonstrated that the enhanced performance of poly(acrylic acid) binder-based silicon/graphite composite anode (c-PAA-Si/C) can be achieved by a quick, scalable, and solid-state electron beam irradiation-induced crosslinking in the presence of methylenebisacrylamide (MBA) as a wate...
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Published in: | Radiation physics and chemistry (Oxford, England : 1993) England : 1993), 2022-07, Vol.196, p.110107, Article 110107 |
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container_title | Radiation physics and chemistry (Oxford, England : 1993) |
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creator | Sohn, Joon-Yong Kim, Gwangjin Hwang, In-Tae Shin, Junhwa Jung, Chan-Hee Lee, Young-Moo |
description | In this study, we demonstrated that the enhanced performance of poly(acrylic acid) binder-based silicon/graphite composite anode (c-PAA-Si/C) can be achieved by a quick, scalable, and solid-state electron beam irradiation-induced crosslinking in the presence of methylenebisacrylamide (MBA) as a water-soluble crosslinker. The result from analysis of an irradiated PAA binder film revealed that the PAA was completely crosslinked by the electron beam irradiation at the absorbed dose of 30 kGy in the presence of 10 wt% MBA, thereby leading to the much reduced swelling degree and improved tensile strength. Likewise, the c-PAA-Si/C-30 anode (irradiated at absorbed dose of 30 kGy) possessed higher hardness than the non-irradiated PAA-Si/C-0 probably due to the effective formation of the crosslinked structure. Moreover, based on the coin-type half cell performance and cycle stability test, the c-PAA-Si/C-30 anode-based cell exhibited the better retention capacity at 100 cycles than that of the PAA-Si/C-0-based one. The EIS and FE-SEM results showed that this better cycling performance could be ascribed to the crosslinked structure-induced structural stability.
•PAA-based Si/C anode was crosslinked by e-beam irradiation in the presence of MBA.•The hardness of the crosslinked Si/C anode was greater improved than non-irradiated one.•The crosslinked anode-based cell exhibited the enhanced capacity retention as well.•This solid-state room temperature crosslinking enables the longer-lasting Si anode. |
doi_str_mv | 10.1016/j.radphyschem.2022.110107 |
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•PAA-based Si/C anode was crosslinked by e-beam irradiation in the presence of MBA.•The hardness of the crosslinked Si/C anode was greater improved than non-irradiated one.•The crosslinked anode-based cell exhibited the enhanced capacity retention as well.•This solid-state room temperature crosslinking enables the longer-lasting Si anode.</description><identifier>ISSN: 0969-806X</identifier><identifier>EISSN: 1879-0895</identifier><identifier>DOI: 10.1016/j.radphyschem.2022.110107</identifier><language>eng</language><publisher>Oxford: Elsevier Ltd</publisher><subject>Acrylics ; Anodes ; Crosslinking ; Electron beam induced crosslinking ; Electron beams ; Electron irradiation ; Graphite ; Lithium secondary battery ; Methylene bisacrylamide ; Methylenebisacrylamide (MBA) ; Performance enhancement ; poly(acrylic acid) (PAA) ; Polyacrylic acid ; Radiation dosage ; Room temperature ; Silicon ; Silicon/graphite composite anode ; Stability tests ; Structural stability ; Tensile strength</subject><ispartof>Radiation physics and chemistry (Oxford, England : 1993), 2022-07, Vol.196, p.110107, Article 110107</ispartof><rights>2022 The Authors</rights><rights>Copyright Elsevier BV Jul 2022</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c396t-c8a86183a45b8e7579e2281608dc30ba61b0c3cabf0dbcbbe0eee543beac1593</citedby><cites>FETCH-LOGICAL-c396t-c8a86183a45b8e7579e2281608dc30ba61b0c3cabf0dbcbbe0eee543beac1593</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><link.rule.ids>314,776,780,27903,27904</link.rule.ids></links><search><creatorcontrib>Sohn, Joon-Yong</creatorcontrib><creatorcontrib>Kim, Gwangjin</creatorcontrib><creatorcontrib>Hwang, In-Tae</creatorcontrib><creatorcontrib>Shin, Junhwa</creatorcontrib><creatorcontrib>Jung, Chan-Hee</creatorcontrib><creatorcontrib>Lee, Young-Moo</creatorcontrib><title>Performance improvement of poly(acrylic acid) binder-based silicon/graphite composite anodes by room temperature electron beam irradiation-induced crosslinking</title><title>Radiation physics and chemistry (Oxford, England : 1993)</title><description>In this study, we demonstrated that the enhanced performance of poly(acrylic acid) binder-based silicon/graphite composite anode (c-PAA-Si/C) can be achieved by a quick, scalable, and solid-state electron beam irradiation-induced crosslinking in the presence of methylenebisacrylamide (MBA) as a water-soluble crosslinker. The result from analysis of an irradiated PAA binder film revealed that the PAA was completely crosslinked by the electron beam irradiation at the absorbed dose of 30 kGy in the presence of 10 wt% MBA, thereby leading to the much reduced swelling degree and improved tensile strength. Likewise, the c-PAA-Si/C-30 anode (irradiated at absorbed dose of 30 kGy) possessed higher hardness than the non-irradiated PAA-Si/C-0 probably due to the effective formation of the crosslinked structure. Moreover, based on the coin-type half cell performance and cycle stability test, the c-PAA-Si/C-30 anode-based cell exhibited the better retention capacity at 100 cycles than that of the PAA-Si/C-0-based one. The EIS and FE-SEM results showed that this better cycling performance could be ascribed to the crosslinked structure-induced structural stability.
•PAA-based Si/C anode was crosslinked by e-beam irradiation in the presence of MBA.•The hardness of the crosslinked Si/C anode was greater improved than non-irradiated one.•The crosslinked anode-based cell exhibited the enhanced capacity retention as well.•This solid-state room temperature crosslinking enables the longer-lasting Si anode.</description><subject>Acrylics</subject><subject>Anodes</subject><subject>Crosslinking</subject><subject>Electron beam induced crosslinking</subject><subject>Electron beams</subject><subject>Electron irradiation</subject><subject>Graphite</subject><subject>Lithium secondary battery</subject><subject>Methylene bisacrylamide</subject><subject>Methylenebisacrylamide (MBA)</subject><subject>Performance enhancement</subject><subject>poly(acrylic acid) (PAA)</subject><subject>Polyacrylic acid</subject><subject>Radiation dosage</subject><subject>Room temperature</subject><subject>Silicon</subject><subject>Silicon/graphite composite anode</subject><subject>Stability tests</subject><subject>Structural stability</subject><subject>Tensile strength</subject><issn>0969-806X</issn><issn>1879-0895</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2022</creationdate><recordtype>article</recordtype><recordid>eNqNUbtu3DAQJIIYyMXJPzBwkxQ6k9KJokrjkNgGDDiFi3QEHysfLyIpL3UG9DX-1fB8LlK62gV2dnZ2hpBvnK054-Jyv0btpt2S7Q7CumZ1veZlwLoPZMVl11dM9u1HsmK96CvJxJ9P5HPOe8ZYJ9tmRV5-Aw4Jg44WqA8TpmcIEGeaBjqlcfmuLS6jt1Rb735Q46MDrIzO4Gj2ZZDi5SPqaednoDaFKeVjp2NykKlZKKYU6AxhAtTzAYHCCHbGFKkBHajHot_r2adYFe6DLbwWU86jj399fPxCzgY9Zvj6Vs_Jw6-fD9ub6u7--nZ7dVfZphdzZaWWgstGb1ojoWu7HupacsGksw0zWnDDbGO1GZgz1hhgANBumqLB8rZvzsnFibYY8HSAPKt9OmAsF1UtupptRNscUf0J9aoQYVAT-qBxUZypYxxqr_6LQx3jUKc4yu72tAvli2cPqLL1UFx3HoshyiX_DpZ_QcifkA</recordid><startdate>202207</startdate><enddate>202207</enddate><creator>Sohn, Joon-Yong</creator><creator>Kim, Gwangjin</creator><creator>Hwang, In-Tae</creator><creator>Shin, Junhwa</creator><creator>Jung, Chan-Hee</creator><creator>Lee, Young-Moo</creator><general>Elsevier Ltd</general><general>Elsevier BV</general><scope>6I.</scope><scope>AAFTH</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7SR</scope><scope>7U5</scope><scope>8BQ</scope><scope>8FD</scope><scope>JG9</scope><scope>L7M</scope></search><sort><creationdate>202207</creationdate><title>Performance improvement of poly(acrylic acid) binder-based silicon/graphite composite anodes by room temperature electron beam irradiation-induced crosslinking</title><author>Sohn, Joon-Yong ; Kim, Gwangjin ; Hwang, In-Tae ; Shin, Junhwa ; Jung, Chan-Hee ; Lee, Young-Moo</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c396t-c8a86183a45b8e7579e2281608dc30ba61b0c3cabf0dbcbbe0eee543beac1593</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2022</creationdate><topic>Acrylics</topic><topic>Anodes</topic><topic>Crosslinking</topic><topic>Electron beam induced crosslinking</topic><topic>Electron beams</topic><topic>Electron irradiation</topic><topic>Graphite</topic><topic>Lithium secondary battery</topic><topic>Methylene bisacrylamide</topic><topic>Methylenebisacrylamide (MBA)</topic><topic>Performance enhancement</topic><topic>poly(acrylic acid) (PAA)</topic><topic>Polyacrylic acid</topic><topic>Radiation dosage</topic><topic>Room temperature</topic><topic>Silicon</topic><topic>Silicon/graphite composite anode</topic><topic>Stability tests</topic><topic>Structural stability</topic><topic>Tensile strength</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Sohn, Joon-Yong</creatorcontrib><creatorcontrib>Kim, Gwangjin</creatorcontrib><creatorcontrib>Hwang, In-Tae</creatorcontrib><creatorcontrib>Shin, Junhwa</creatorcontrib><creatorcontrib>Jung, Chan-Hee</creatorcontrib><creatorcontrib>Lee, Young-Moo</creatorcontrib><collection>ScienceDirect Open Access Titles</collection><collection>Elsevier:ScienceDirect:Open Access</collection><collection>CrossRef</collection><collection>Engineered Materials Abstracts</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>METADEX</collection><collection>Technology Research Database</collection><collection>Materials Research Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Radiation physics and chemistry (Oxford, England : 1993)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Sohn, Joon-Yong</au><au>Kim, Gwangjin</au><au>Hwang, In-Tae</au><au>Shin, Junhwa</au><au>Jung, Chan-Hee</au><au>Lee, Young-Moo</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Performance improvement of poly(acrylic acid) binder-based silicon/graphite composite anodes by room temperature electron beam irradiation-induced crosslinking</atitle><jtitle>Radiation physics and chemistry (Oxford, England : 1993)</jtitle><date>2022-07</date><risdate>2022</risdate><volume>196</volume><spage>110107</spage><pages>110107-</pages><artnum>110107</artnum><issn>0969-806X</issn><eissn>1879-0895</eissn><abstract>In this study, we demonstrated that the enhanced performance of poly(acrylic acid) binder-based silicon/graphite composite anode (c-PAA-Si/C) can be achieved by a quick, scalable, and solid-state electron beam irradiation-induced crosslinking in the presence of methylenebisacrylamide (MBA) as a water-soluble crosslinker. The result from analysis of an irradiated PAA binder film revealed that the PAA was completely crosslinked by the electron beam irradiation at the absorbed dose of 30 kGy in the presence of 10 wt% MBA, thereby leading to the much reduced swelling degree and improved tensile strength. Likewise, the c-PAA-Si/C-30 anode (irradiated at absorbed dose of 30 kGy) possessed higher hardness than the non-irradiated PAA-Si/C-0 probably due to the effective formation of the crosslinked structure. Moreover, based on the coin-type half cell performance and cycle stability test, the c-PAA-Si/C-30 anode-based cell exhibited the better retention capacity at 100 cycles than that of the PAA-Si/C-0-based one. The EIS and FE-SEM results showed that this better cycling performance could be ascribed to the crosslinked structure-induced structural stability.
•PAA-based Si/C anode was crosslinked by e-beam irradiation in the presence of MBA.•The hardness of the crosslinked Si/C anode was greater improved than non-irradiated one.•The crosslinked anode-based cell exhibited the enhanced capacity retention as well.•This solid-state room temperature crosslinking enables the longer-lasting Si anode.</abstract><cop>Oxford</cop><pub>Elsevier Ltd</pub><doi>10.1016/j.radphyschem.2022.110107</doi><oa>free_for_read</oa></addata></record> |
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subjects | Acrylics Anodes Crosslinking Electron beam induced crosslinking Electron beams Electron irradiation Graphite Lithium secondary battery Methylene bisacrylamide Methylenebisacrylamide (MBA) Performance enhancement poly(acrylic acid) (PAA) Polyacrylic acid Radiation dosage Room temperature Silicon Silicon/graphite composite anode Stability tests Structural stability Tensile strength |
title | Performance improvement of poly(acrylic acid) binder-based silicon/graphite composite anodes by room temperature electron beam irradiation-induced crosslinking |
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