$\require{mediawiki-texvc}$

연합인증

연합인증 가입 기관의 연구자들은 소속기관의 인증정보(ID와 암호)를 이용해 다른 대학, 연구기관, 서비스 공급자의 다양한 온라인 자원과 연구 데이터를 이용할 수 있습니다.

이는 여행자가 자국에서 발행 받은 여권으로 세계 각국을 자유롭게 여행할 수 있는 것과 같습니다.

연합인증으로 이용이 가능한 서비스는 NTIS, DataON, Edison, Kafe, Webinar 등이 있습니다.

한번의 인증절차만으로 연합인증 가입 서비스에 추가 로그인 없이 이용이 가능합니다.

다만, 연합인증을 위해서는 최초 1회만 인증 절차가 필요합니다. (회원이 아닐 경우 회원 가입이 필요합니다.)

연합인증 절차는 다음과 같습니다.

최초이용시에는
ScienceON에 로그인 → 연합인증 서비스 접속 → 로그인 (본인 확인 또는 회원가입) → 서비스 이용

그 이후에는
ScienceON 로그인 → 연합인증 서비스 접속 → 서비스 이용

연합인증을 활용하시면 KISTI가 제공하는 다양한 서비스를 편리하게 이용하실 수 있습니다.

Lithium-sulfur batteries

MRS bulletin, v.39 no.5, 2014년, pp.436 - 442  

Nazar, Linda F. ,  Cuisinier, Marine ,  Pang, Quan

Abstract AI-Helper 아이콘AI-Helper

Markets for energy storage that go beyond portable electronics have emerged rapidly this decade, including powering electric vehicles and “leveling the grid” fed by renewable sources such as solar energy, which are intermittent in supply. These new demands require a significant step-up i...

참고문헌 (77)

  1. 36. Mikhaylik Y.V. , US Patent 7,352,680 (2008). 

  2. Patel, Manu U. M., Demir‐Cakan, Rezan, Morcrette, Mathieu, Tarascon, Jean‐Marie, Gaberscek, Miran, Dominko, Robert. Li‐S Battery Analyzed by UV/Vis in Operando Mode. ChemSusChem, vol.6, no.7, 1177-1181.

  3. 1. http://www.draperprize.org/. 

  4. Yamin, H., Peled, E.. Electrochemistry of a nonaqueous lithium/sulfur cell. Journal of power sources, vol.9, no.3, 281-287.

  5. Cuisinier, Marine, Cabelguen, Pierre-Etienne, Evers, Scott, He, Guang, Kolbeck, Mason, Garsuch, Arnd, Bolin, Trudy, Balasubramanian, Mahalingam, Nazar, Linda F.. Sulfur Speciation in Li–S Batteries Determined by Operando X-ray Absorption Spectroscopy. The journal of physical chemistry letters, vol.4, no.19, 3227-3232.

  6. Tamura, Takashi, Hachida, Takeshi, Yoshida, Kazuki, Tachikawa, Naoki, Dokko, Kaoru, Watanabe, Masayoshi. New glyme–cyclic imide lithium salt complexes as thermally stable electrolytes for lithium batteries. Journal of power sources, vol.195, no.18, 6095-6100.

  7. Cheon, Sang-Eun, Ko, Ki-Seok, Cho, Ji-Hoon, Kim, Sun-Wook, Chin, Eog-Yong, Kim, Hee-Tak. Rechargeable Lithium Sulfur Battery. Journal of the Electrochemical Society : JES, vol.150, no.6, A796-.

  8. Ji, Xiulei, Lee, Kyu Tae, Nazar, Linda F.. A highly ordered nanostructured carbon–sulphur cathode for lithium–sulphur batteries. Nature materials, vol.8, no.6, 500-506.

  9. Machida, Nobuya, Kobayashi, Kazuma, Nishikawa, Yutaka, Shigematsu, Toshihiko. Electrochemical properties of sulfur as cathode materials in a solid-state lithium battery with inorganic solid electrolytes. Solid state ionics, vol.175, no.1, 247-250.

  10. Brückner, Jan, Thieme, Sören, Böttger‐Hiller, Falko, Bauer, Ingolf, Grossmann, Hannah Tamara, Strubel, Patrick, Althues, Holger, Spange, Stefan, Kaskel, Stefan. Carbon‐Based Anodes for Lithium Sulfur Full Cells with High Cycle Stability. Advanced functional materials, vol.24, no.9, 1284-1289.

  11. Fu, Yongzhu, Su, Yu‐Sheng, Manthiram, Arumugam. Highly Reversible Lithium/Dissolved Polysulfide Batteries with Carbon Nanotube Electrodes. Angewandte Chemie. international edition, vol.52, no.27, 6930-6935.

  12. Guo, Juchen, Xu, Yunhua, Wang, Chunsheng. Sulfur-Impregnated Disordered Carbon Nanotubes Cathode for Lithium–Sulfur Batteries. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.11, no.10, 4288-4294.

  13. Gao, Jie, Lowe, Michael A., Kiya, Yasuyuki, Abruña, Héctor D.. Effects of Liquid Electrolytes on the Charge-Discharge Performance of Rechargeable Lithium/Sulfur Batteries: Electrochemical and in-Situ X-ray Absorption Spectroscopic Studies. The journal of physical chemistry. C, Nanomaterials and Interfaces, vol.115, no.50, 25132-25137.

  14. Sahu, Gayatri, Lin, Zhan, Li, Juchuan, Liu, Zengcai, Dudney, Nancy, Liang, Chengdu. Air-stable, high-conduction solid electrolytes of arsenic-substituted Li4SnS4. Energy & environmental science, vol.7, no.3, 1053-1058.

  15. Lu, Songtao, Cheng, Yingwen, Wu, Xiaohong, Liu, Jie. Significantly Improved Long-Cycle Stability in High-Rate Li–S Batteries Enabled by Coaxial Graphene Wrapping over Sulfur-Coated Carbon Nanofibers. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.13, no.6, 2485-2489.

  16. Kim, Hyung-Sun, Jeong, Chang-Sik. Electrochemical Properties of Binary Electrolytes for Lithium-sulfur Batteries. Bulletin of the Korean chemical society, vol.32, no.10, 3682-3686.

  17. Ding, Fei, Xu, Wu, Graff, Gordon L., Zhang, Jian, Sushko, Maria L., Chen, Xilin, Shao, Yuyan, Engelhard, Mark H., Nie, Zimin, Xiao, Jie, Liu, Xingjiang, Sushko, Peter V., Liu, Jun, Zhang, Ji-Guang. Dendrite-Free Lithium Deposition via Self-Healing Electrostatic Shield Mechanism. Journal of the American Chemical Society, vol.135, no.11, 4450-4456.

  18. He, X., Ren, J., Wang, L., Pu, W., Jiang, C., Wan, C.. Expansion and shrinkage of the sulfur composite electrode in rechargeable lithium batteries. Journal of power sources, vol.190, no.1, 154-156.

  19. He, Guang, Evers, Scott, Liang, Xiao, Cuisinier, Marine, Garsuch, Arnd, Nazar, Linda F.. Tailoring Porosity in Carbon Nanospheres for Lithium–Sulfur Battery Cathodes. ACS nano, vol.7, no.12, 10920-10930.

  20. Nagao, Motohiro, Hayashi, Akitoshi, Tatsumisago, Masahiro. Sulfur–carbon composite electrode for all-solid-state Li/S battery with Li2S–P2S5 solid electrolyte. Electrochimica acta, vol.56, no.17, 6055-6059.

  21. El Shinawi, H., Janek, J.. Stabilization of cubic lithium-stuffed garnets of the type ''Li7La3Zr2O12'' by addition of gallium. Journal of power sources, vol.225, 13-19.

  22. Bruce, Peter G., Freunberger, Stefan A., Hardwick, Laurence J., Tarascon, Jean-Marie. Li??O2 and Li??S batteries with high energy storage. Nature materials, vol.11, no.1, 19-29.

  23. 17. Nole D. , Moss V. , US Patent 3532543 (1970). 

  24. Rauh, R. D., Abraham, K. M., Pearson, G. F., Surprenant, J. K., Brummer, S. B.. A Lithium/Dissolved Sulfur Battery with an Organic Electrolyte. Journal of the Electrochemical Society : JES, vol.126, no.4, 523-527.

  25. Murugan, Ramaswamy, Thangadurai, Venkataraman, Weppner, Werner. Fast Lithium Ion Conduction in Garnet-Type Li7La3Zr2O12. Angewandte Chemie. international edition, vol.46, no.41, 7778-7781.

  26. Wang, Hailiang, Yang, Yuan, Liang, Yongye, Robinson, Joshua Tucker, Li, Yanguang, Jackson, Ariel, Cui, Yi, Dai, Hongjie. Graphene-Wrapped Sulfur Particles as a Rechargeable Lithium-Sulfur Battery Cathode Material with High Capacity and Cycling Stability. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.11, no.7, 2644-2647.

  27. Yin, Ya‐Xia, Xin, Sen, Guo, Yu‐Guo, Wan, Li‐Jun. Lithium–Sulfur Batteries: Electrochemistry, Materials, and Prospects. Angewandte Chemie. international edition, vol.52, no.50, 13186-13200.

  28. Yuan, L.X., Feng, J.K., Ai, X.P., Cao, Y.L., Chen, S.L., Yang, H.X.. Improved dischargeability and reversibility of sulfur cathode in a novel ionic liquid electrolyte. Electrochemistry communications, vol.8, no.4, 610-614.

  29. Barchasz, Céline, Molton, Florian, Duboc, Carole, Leprêtre, Jean-Claude, Patoux, Sébastien, Alloin, Fannie. Lithium/Sulfur Cell Discharge Mechanism: An Original Approach for Intermediate Species Identification. Analytical chemistry, vol.84, no.9, 3973-3980.

  30. Rauh, R.D., Shuker, F.S., Marston, J.M., Brummer, S.B.. Formation of lithium polysulfides in aprotic media. Journal of inorganic and nuclear chemistry, vol.39, no.10, 1761-1766.

  31. Evers, Scott, Nazar, Linda F.. New Approaches for High Energy Density Lithium–Sulfur Battery Cathodes. Accounts of chemical research, vol.46, no.5, 1135-1143.

  32. Agostini, M., Aihara, Y., Yamada, T., Scrosati, B., Hassoun, J.. A lithium-sulfur battery using a solid, glass-type P2S5-Li2S electrolyte. Solid state ionics, vol.244, 48-51.

  33. Manthiram, Arumugam, Fu, Yongzhu, Su, Yu-Sheng. Challenges and Prospects of Lithium–Sulfur Batteries. Accounts of chemical research, vol.46, no.5, 1125-1134.

  34. Song, Min-Kyu, Zhang, Yuegang, Cairns, Elton J.. A Long-Life, High-Rate Lithium/Sulfur Cell: A Multifaceted Approach to Enhancing Cell Performance. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.13, no.12, 5891-5899.

  35. Villevieille, Claire, Novák, Petr. A metastable β-sulfur phase stabilized at room temperature during cycling of high efficiency carbon fibre-sulfur composites for Li-S batteries. Journal of materials chemistry. A, Materials for energy and sustainability, vol.1, no.42, 13089-.

  36. Lithium Batteries 1983 Abraham 

  37. Chen, Renjie, Zhao, Teng, Lu, Jun, Wu, Feng, Li, Li, Chen, Junzheng, Tan, Guoqiang, Ye, Yusheng, Amine, Khalil. Graphene-Based Three-Dimensional Hierarchical Sandwich-type Architecture for High-Performance Li/S Batteries. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.13, no.10, 4642-4649.

  38. Park, Jun-Woo, Yamauchi, Kento, Takashima, Eriko, Tachikawa, Naoki, Ueno, Kazuhide, Dokko, Kaoru, Watanabe, Masayoshi. Solvent Effect of Room Temperature Ionic Liquids on Electrochemical Reactions in Lithium–Sulfur Batteries. The journal of physical chemistry. C, Nanomaterials and Interfaces, vol.117, no.9, 4431-4440.

  39. Takeuchi, Tomonari, Kageyama, Hiroyuki, Nakanishi, Koji, Ohta, Toshiaki, Sakuda, Atsushi, Sakaebe, Hikari, Kobayashi, Hironori, Tatsumi, Kuniaki, Ogumi, Zempachi. Rapid Preparation of Li2S-P2S5 Solid Electrolyte and Its Application for Graphite/Li2S All-Solid-State Lithium Secondary Battery. ECS electrochemistry letters : EEL, vol.3, no.5, A31-A35.

  40. Ji, Xiulei, Nazar, Linda F.. Advances in Li–S batteries. Journal of materials chemistry, vol.20, no.44, 9821-9826.

  41. Yang, Yuan, Zheng, Guangyuan, Cui, Yi. Nanostructured sulfur cathodes. Chemical Society reviews, vol.42, no.7, 3018-3032.

  42. Ryu, H.S., Ahn, H.J., Kim, K.W., Ahn, J.H., Lee, J.Y., Cairns, E.J.. Self-discharge of lithium–sulfur cells using stainless-steel current-collectors. Journal of power sources, vol.140, no.2, 365-369.

  43. 30. Visco S.J. , Chu M.Y. , US Patent 6,210,832 (2001). 

  44. Lin, Zhan, Liu, Zengcai, Dudney, Nancy J., Liang, Chengdu. Lithium Superionic Sulfide Cathode for All-Solid Lithium–Sulfur Batteries. ACS nano, vol.7, no.3, 2829-2833.

  45. Barchasz, Céline, Leprêtre, Jean-Claude, Alloin, Fannie, Patoux, Sébastien. New insights into the limiting parameters of the Li/S rechargeable cell. Journal of power sources, vol.199, 322-330.

  46. Knauth, P.. Inorganic solid Li ion conductors: An overview. Solid state ionics, vol.180, no.14, 911-916.

  47. 15. Herbert D. , Ulam D.J. , US Patent 3043896 (1962). 

  48. Elazari, R., Salitra, G., Gershinsky, G., Garsuch, A., Panchenko, A., Aurbach, D.. Rechargeable lithiated silicon-sulfur (SLS) battery prototypes. Electrochemistry communications, vol.14, no.1, 21-24.

  49. Yang, Zhenguo, Zhang, Jianlu, Kintner-Meyer, Michael C. W., Lu, Xiaochuan, Choi, Daiwon, Lemmon, John P., Liu, Jun. Electrochemical Energy Storage for Green Grid. Chemical reviews, vol.111, no.5, 3577-3613.

  50. Jayaprakash, N., Shen, J., Moganty, Surya S., Corona, A., Archer, Lynden A.. Porous Hollow Carbon@Sulfur Composites for High‐Power Lithium–Sulfur Batteries. Angewandte Chemie, vol.123, no.26, 6026-6030.

  51. Ohta, S., Kobayashi, T., Asaoka, T.. High lithium ionic conductivity in the garnet-type oxide Li7-X La3(Zr2-X, NbX)O12 (X=0-2). Journal of power sources, vol.196, no.6, 3342-3345.

  52. Hassoun, Jusef, Scrosati, Bruno. A High‐Performance Polymer Tin Sulfur Lithium Ion Battery. Angewandte Chemie. international edition, vol.49, no.13, 2371-2374.

  53. Yuan, Lixia, Qiu, Xinping, Chen, Liquan, Zhu, Wentao. New insight into the discharge process of sulfur cathode by electrochemical impedance spectroscopy. Journal of power sources, vol.189, no.1, 127-132.

  54. Yang, Yuan, Zheng, Guangyuan, Cui, Yi. A membrane-free lithium/polysulfide semi-liquid battery for large-scale energy storage. Energy & environmental science, vol.6, no.5, 1552-1558.

  55. 16. Rao M.L.B. , US Patent 3,413,154 (1968). 

  56. Nelson, Johanna, Misra, Sumohan, Yang, Yuan, Jackson, Ariel, Liu, Yijin, Wang, Hailiang, Dai, Hongjie, Andrews, Joy C., Cui, Yi, Toney, Michael F.. In Operando X-ray Diffractionand TransmissionX-ray Microscopy of Lithium Sulfur Batteries. Journal of the American Chemical Society, vol.134, no.14, 6337-6343.

  57. Weng, Wei, Pol, Vilas G., Amine, Khalil. Ultrasound Assisted Design of Sulfur/Carbon Cathodes with Partially Fluorinated Ether Electrolytes for Highly Efficient Li/S Batteries. Advanced materials, vol.25, no.11, 1608-1615.

  58. Zheng, Guangyuan, Zhang, Qianfan, Cha, Judy J., Yang, Yuan, Li, Weiyang, Seh, Zhi Wei, Cui, Yi. Amphiphilic Surface Modification of Hollow Carbon Nanofibers for Improved Cycle Life of Lithium Sulfur Batteries. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.13, no.3, 1265-1270.

  59. Demir-Cakan, Rezan, Morcrette, Mathieu, Gangulibabu, Guéguen, Aurélie, Dedryvère, Rémi, Tarascon, Jean-Marie. Li–S batteries: simple approaches for superior performance. Energy & environmental science, vol.6, no.1, 176-182.

  60. Kobayashi, Takeshi, Imade, Yuki, Shishihara, Daisuke, Homma, Kenji, Nagao, Miki, Watanabe, Ryota, Yokoi, Toshiyuki, Yamada, Atsuo, Kanno, Ryoji, Tatsumi, Takashi. All solid-state battery with sulfur electrode and thio-LISICON electrolyte. Journal of power sources, vol.182, no.2, 621-625.

  61. Kim, Junghoon, Lee, Dong‐Ju, Jung, Hun‐Gi, Sun, Yang‐Kook, Hassoun, Jusef, Scrosati, Bruno. An Advanced Lithium‐Sulfur Battery. Advanced functional materials, vol.23, no.8, 1076-1080.

  62. Akridge, James R., Mikhaylik, Yuriy V., White, Neal. Li/S fundamental chemistry and application to high-performance rechargeable batteries. Solid state ionics, vol.175, no.1, 243-245.

  63. Wang, Da-Wei, Zeng, Qingcong, Zhou, Guangmin, Yin, Lichang, Li, Feng, Cheng, Hui-Ming, Gentle, Ian R., Lu, Gao Qing Max. Carbon-sulfur composites for Li-S batteries: status and prospects. Journal of materials chemistry. A, Materials for energy and sustainability, vol.1, no.33, 9382-.

  64. Peled, E., Gorenshtein, A., Segal, M., Sternberg, Y.. Rechargeable lithiumsulfur battery (extended abstract). Journal of power sources, vol.26, no.3, 269-271.

  65. Elazari, Ran, Salitra, Gregory, Talyosef, Yossi, Grinblat, Judith, Scordilis-Kelley, Charislea, Xiao, Ang, Affinito, John, Aurbach, Doron. Morphological and Structural Studies of Composite Sulfur Electrodes upon Cycling by HRTEM, AFM and Raman Spectroscopy. Journal of the Electrochemical Society : JES, vol.157, no.10, A1131-.

  66. Goodenough, John B., Park, Kyu-Sung. The Li-Ion Rechargeable Battery: A Perspective. Journal of the American Chemical Society, vol.135, no.4, 1167-1176.

  67. Suo, Liumin, Hu, Yong-Sheng, Li, Hong, Armand, Michel, Chen, Liquan. A new class of Solvent-in-Salt electrolyte for high-energy rechargeable metallic lithium batteries. Nature communications, vol.4, 1481-.

  68. Yang, Yuan, McDowell, Matthew T., Jackson, Ariel, Cha, Judy J., Hong, Seung Sae, Cui, Yi. New Nanostructured Li2S/Silicon Rechargeable Battery with High Specific Energy. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.10, no.4, 1486-1491.

  69. Rao, B. M. L., Shropshire, J. A.. Effect of Sulfur Impurities on Li / TiS2 Cells. Journal of the Electrochemical Society : JES, vol.128, no.5, 942-945.

  70. Diao, Yan, Xie, Kai, Xiong, Shizhao, Hong, Xiaobin. Analysis of Polysulfide Dissolved in Electrolyte in Discharge-Charge Process of Li-S Battery. Journal of the Electrochemical Society : JES, vol.159, no.4, A421-A425.

  71. Zheng, Guangyuan, Yang, Yuan, Cha, Judy J., Hong, Seung Sae, Cui, Yi. Hollow Carbon Nanofiber-Encapsulated Sulfur Cathodes for High Specific Capacity Rechargeable Lithium Batteries. Nano letters : a journal dedicated to nanoscience and nanotechnology, vol.11, no.10, 4462-4467.

  72. Sakuda, Atsushi, Hayashi, Akitoshi, Tatsumisago, Masahiro. Sulfide Solid Electrolyte with Favorable Mechanical Property for All-Solid-State Lithium Battery. Scientific reports, vol.3, 2261-.

  73. Zhang, Tao, Imanishi, Nobuyuki, Shimonishi, Yuta, Hirano, Atsushi, Xie, Jian, Takeda, Yasuo, Yamamoto, Osamu, Sammes, Nigel. Stability of a Water-Stable Lithium Metal Anode for a Lithium-Air Battery with Acetic Acid-Water Solutions. Journal of the Electrochemical Society : JES, vol.157, no.2, A214-.

  74. Hagen, M., Dorfler, S., Fanz, P., Berger, T., Speck, R., Tubke, J., Althues, H., Hoffmann, M.J., Scherr, C., Kaskel, S.. Development and costs calculation of lithium-sulfur cells with high sulfur load and binder free electrodes. Journal of power sources, vol.224, 260-268.

  75. Ji, Liwen, Rao, Mumin, Zheng, Haimei, Zhang, Liang, Li, Yuanchang, Duan, Wenhui, Guo, Jinghua, Cairns, Elton J., Zhang, Yuegang. Graphene Oxide as a Sulfur Immobilizer in High Performance Lithium/Sulfur Cells. Journal of the American Chemical Society, vol.133, no.46, 18522-18525.

  76. Aurbach, Doron, Pollak, Elad, Elazari, Ran, Salitra, Gregory, Kelley, C. Scordilis, Affinito, John. On the Surface Chemical Aspects of Very High Energy Density, Rechargeable Li-Sulfur Batteries. Journal of the Electrochemical Society : JES, vol.156, no.8, A694-.

  77. Waluś, Sylwia, Barchasz, Céline, Colin, Jean-François, Martin, Jean-Frédéric, Elkaïm, Erik, Leprêtre, Jean-Claude, Alloin, Fannie. New insight into the working mechanism of lithium–sulfur batteries: in situ and operando X-ray diffraction characterization. Chemical communications : Chem comm, vol.49, no.72, 7899-7901.

관련 콘텐츠

저작권 관리 안내
섹션별 컨텐츠 바로가기

AI-Helper ※ AI-Helper는 오픈소스 모델을 사용합니다.

AI-Helper 아이콘
AI-Helper
안녕하세요, AI-Helper입니다. 좌측 "선택된 텍스트"에서 텍스트를 선택하여 요약, 번역, 용어설명을 실행하세요.
※ AI-Helper는 부적절한 답변을 할 수 있습니다.

선택된 텍스트

맨위로