Fe-carbon hybrid composite interlayer for improved electrochemical performance of Li-S battery

•Iron (Fe) is used as catalyst to derive partially graphitized RF carbon xerogel.•Fe-catalysts cause local graphitization within amorphous carbon matrix.•Fe embedded partially graphitized hard carbon is used as interlayer [Fe-G-HC-IL].•Fe-G-HC-IL improves the electrochemical performance of modified...

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Veröffentlicht in:Electrochimica acta 2022-01, Vol.401, p.139466, Article 139466
Hauptverfasser: Kumar, S. Krishna, Gaikwad, Mayur M., Rani, Poonam, Pathak, Anil D., Sharma, Chandra S.
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container_start_page 139466
container_title Electrochimica acta
container_volume 401
creator Kumar, S. Krishna
Gaikwad, Mayur M.
Rani, Poonam
Pathak, Anil D.
Sharma, Chandra S.
description •Iron (Fe) is used as catalyst to derive partially graphitized RF carbon xerogel.•Fe-catalysts cause local graphitization within amorphous carbon matrix.•Fe embedded partially graphitized hard carbon is used as interlayer [Fe-G-HC-IL].•Fe-G-HC-IL improves the electrochemical performance of modified Li-S battery.•Electro-catalytic activity of Fe converts Li-polysulfides species to redox products. The major bottlenecks in achieving the full potential of Lithium-sulfur (Li-S) batteries are the insulating nature of sulfur and Li-polysulfide (Li-PS) shuttling which lead to their poor rate performance and cyclic stability. In this work, we solve these critical issues using a unique Fe-carbon hybrid composite interlayer prepared by the catalytic graphitization of resorcinol formaldehyde (RF) xerogel. The physicochemical characterizations of the interlayer material reveal that it consists of iron-nanoparticles encapsulated by graphitic carbon within the amorphous RF xerogel derived hard carbon matrix (Fe-G-HC-IL). The Li-S battery, with Fe-G-HC-IL as a functional separator and activated candle soot-sulfur composite cathode, demonstrates a significantly improved electrochemical performance than without the interlayer. The Li-S battery with Fe-G-HC-IL shows the capacity of 1057 mAh g−1 at 1 C-rate with a decay rate of 0.055% per cycle and excellent rate capability. Further, density functional theory (DFT) calculation indicates that the Fe embedded carbon structure present in interlayer composite contributes significantly to the improvement in the conductivity and minimization of Li-PS shuttling. Additionally, this Fe-carbon hybrid structure electro catalyzes the conversion of Li-PS to desired end products of the redox reactions which further enhance the electrochemical performance of Li–S batteries. [Display omitted]
doi_str_mv 10.1016/j.electacta.2021.139466
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Krishna ; Gaikwad, Mayur M. ; Rani, Poonam ; Pathak, Anil D. ; Sharma, Chandra S.</creator><creatorcontrib>Kumar, S. Krishna ; Gaikwad, Mayur M. ; Rani, Poonam ; Pathak, Anil D. ; Sharma, Chandra S.</creatorcontrib><description>•Iron (Fe) is used as catalyst to derive partially graphitized RF carbon xerogel.•Fe-catalysts cause local graphitization within amorphous carbon matrix.•Fe embedded partially graphitized hard carbon is used as interlayer [Fe-G-HC-IL].•Fe-G-HC-IL improves the electrochemical performance of modified Li-S battery.•Electro-catalytic activity of Fe converts Li-polysulfides species to redox products. The major bottlenecks in achieving the full potential of Lithium-sulfur (Li-S) batteries are the insulating nature of sulfur and Li-polysulfide (Li-PS) shuttling which lead to their poor rate performance and cyclic stability. In this work, we solve these critical issues using a unique Fe-carbon hybrid composite interlayer prepared by the catalytic graphitization of resorcinol formaldehyde (RF) xerogel. The physicochemical characterizations of the interlayer material reveal that it consists of iron-nanoparticles encapsulated by graphitic carbon within the amorphous RF xerogel derived hard carbon matrix (Fe-G-HC-IL). The Li-S battery, with Fe-G-HC-IL as a functional separator and activated candle soot-sulfur composite cathode, demonstrates a significantly improved electrochemical performance than without the interlayer. The Li-S battery with Fe-G-HC-IL shows the capacity of 1057 mAh g−1 at 1 C-rate with a decay rate of 0.055% per cycle and excellent rate capability. Further, density functional theory (DFT) calculation indicates that the Fe embedded carbon structure present in interlayer composite contributes significantly to the improvement in the conductivity and minimization of Li-PS shuttling. Additionally, this Fe-carbon hybrid structure electro catalyzes the conversion of Li-PS to desired end products of the redox reactions which further enhance the electrochemical performance of Li–S batteries. 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Krishna</creatorcontrib><creatorcontrib>Gaikwad, Mayur M.</creatorcontrib><creatorcontrib>Rani, Poonam</creatorcontrib><creatorcontrib>Pathak, Anil D.</creatorcontrib><creatorcontrib>Sharma, Chandra S.</creatorcontrib><title>Fe-carbon hybrid composite interlayer for improved electrochemical performance of Li-S battery</title><title>Electrochimica acta</title><description>•Iron (Fe) is used as catalyst to derive partially graphitized RF carbon xerogel.•Fe-catalysts cause local graphitization within amorphous carbon matrix.•Fe embedded partially graphitized hard carbon is used as interlayer [Fe-G-HC-IL].•Fe-G-HC-IL improves the electrochemical performance of modified Li-S battery.•Electro-catalytic activity of Fe converts Li-polysulfides species to redox products. The major bottlenecks in achieving the full potential of Lithium-sulfur (Li-S) batteries are the insulating nature of sulfur and Li-polysulfide (Li-PS) shuttling which lead to their poor rate performance and cyclic stability. In this work, we solve these critical issues using a unique Fe-carbon hybrid composite interlayer prepared by the catalytic graphitization of resorcinol formaldehyde (RF) xerogel. The physicochemical characterizations of the interlayer material reveal that it consists of iron-nanoparticles encapsulated by graphitic carbon within the amorphous RF xerogel derived hard carbon matrix (Fe-G-HC-IL). The Li-S battery, with Fe-G-HC-IL as a functional separator and activated candle soot-sulfur composite cathode, demonstrates a significantly improved electrochemical performance than without the interlayer. The Li-S battery with Fe-G-HC-IL shows the capacity of 1057 mAh g−1 at 1 C-rate with a decay rate of 0.055% per cycle and excellent rate capability. Further, density functional theory (DFT) calculation indicates that the Fe embedded carbon structure present in interlayer composite contributes significantly to the improvement in the conductivity and minimization of Li-PS shuttling. Additionally, this Fe-carbon hybrid structure electro catalyzes the conversion of Li-PS to desired end products of the redox reactions which further enhance the electrochemical performance of Li–S batteries. [Display omitted]</description><subject>Carbon</subject><subject>Carbon xerogel</subject><subject>Catalytic graphitization</subject><subject>Chemical reactions</subject><subject>Decay rate</subject><subject>Density functional theory</subject><subject>Electrochemical analysis</subject><subject>Embedded structures</subject><subject>Fe-carbon interlayer</subject><subject>Graphitization</subject><subject>Hybrid composites</subject><subject>Hybrid structures</subject><subject>Insulation</subject><subject>Interlayers</subject><subject>Iron</subject><subject>Li-polysulfides</subject><subject>Li-S battery</subject><subject>Lithium sulfur batteries</subject><subject>Nanoparticles</subject><subject>Redox reactions</subject><subject>Separators</subject><subject>Soot</subject><subject>Sulfur</subject><subject>Xerogels</subject><issn>0013-4686</issn><issn>1873-3859</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2022</creationdate><recordtype>article</recordtype><recordid>eNqFUF1LwzAUDaLgnP4GAz635qNLm8cxnAoDH9yzIU1uWErb1LQb9N8bnfgqXLgP93zccxC6pySnhIrHJocWzKTT5IwwmlMuCyEu0IJWJc94tZKXaEEI5VkhKnGNbsaxIYSUoiQL9LGFzOhYhx4f5jp6i03ohjD6CbDvJ4itniFiFyL23RDDCSz-8YvBHKDzRrd4gJjune4N4ODwzmfvuNZTIs-36MrpdoS7371E--3TfvOS7d6eXzfrXWZ4wafMcscqCrLUWlDmDDi60lqTuhDEEiFLZxOw4oUBKwtZEMeMpY4IQV3JV3yJHs6y6cPPI4yTasIx9slRMcGIFJxxmVDlGWViGMcITg3RdzrOihL13aVq1F-X6rtLde4yMddnJqQMJw9RjcZDymt9THhlg_9X4wtpQIKL</recordid><startdate>20220101</startdate><enddate>20220101</enddate><creator>Kumar, S. 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Krishna</creatorcontrib><creatorcontrib>Gaikwad, Mayur M.</creatorcontrib><creatorcontrib>Rani, Poonam</creatorcontrib><creatorcontrib>Pathak, Anil D.</creatorcontrib><creatorcontrib>Sharma, Chandra S.</creatorcontrib><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>Electrochimica acta</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Kumar, S. Krishna</au><au>Gaikwad, Mayur M.</au><au>Rani, Poonam</au><au>Pathak, Anil D.</au><au>Sharma, Chandra S.</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Fe-carbon hybrid composite interlayer for improved electrochemical performance of Li-S battery</atitle><jtitle>Electrochimica acta</jtitle><date>2022-01-01</date><risdate>2022</risdate><volume>401</volume><spage>139466</spage><pages>139466-</pages><artnum>139466</artnum><issn>0013-4686</issn><eissn>1873-3859</eissn><abstract>•Iron (Fe) is used as catalyst to derive partially graphitized RF carbon xerogel.•Fe-catalysts cause local graphitization within amorphous carbon matrix.•Fe embedded partially graphitized hard carbon is used as interlayer [Fe-G-HC-IL].•Fe-G-HC-IL improves the electrochemical performance of modified Li-S battery.•Electro-catalytic activity of Fe converts Li-polysulfides species to redox products. The major bottlenecks in achieving the full potential of Lithium-sulfur (Li-S) batteries are the insulating nature of sulfur and Li-polysulfide (Li-PS) shuttling which lead to their poor rate performance and cyclic stability. In this work, we solve these critical issues using a unique Fe-carbon hybrid composite interlayer prepared by the catalytic graphitization of resorcinol formaldehyde (RF) xerogel. The physicochemical characterizations of the interlayer material reveal that it consists of iron-nanoparticles encapsulated by graphitic carbon within the amorphous RF xerogel derived hard carbon matrix (Fe-G-HC-IL). The Li-S battery, with Fe-G-HC-IL as a functional separator and activated candle soot-sulfur composite cathode, demonstrates a significantly improved electrochemical performance than without the interlayer. The Li-S battery with Fe-G-HC-IL shows the capacity of 1057 mAh g−1 at 1 C-rate with a decay rate of 0.055% per cycle and excellent rate capability. Further, density functional theory (DFT) calculation indicates that the Fe embedded carbon structure present in interlayer composite contributes significantly to the improvement in the conductivity and minimization of Li-PS shuttling. Additionally, this Fe-carbon hybrid structure electro catalyzes the conversion of Li-PS to desired end products of the redox reactions which further enhance the electrochemical performance of Li–S batteries. [Display omitted]</abstract><cop>Oxford</cop><pub>Elsevier Ltd</pub><doi>10.1016/j.electacta.2021.139466</doi></addata></record>
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subjects Carbon
Carbon xerogel
Catalytic graphitization
Chemical reactions
Decay rate
Density functional theory
Electrochemical analysis
Embedded structures
Fe-carbon interlayer
Graphitization
Hybrid composites
Hybrid structures
Insulation
Interlayers
Iron
Li-polysulfides
Li-S battery
Lithium sulfur batteries
Nanoparticles
Redox reactions
Separators
Soot
Sulfur
Xerogels
title Fe-carbon hybrid composite interlayer for improved electrochemical performance of Li-S battery
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