Journal of Automotive Safety and Energy ›› 2025, Vol. 16 ›› Issue (5): 657-678.DOI: 10.3969/j.issn.1674-8484.2025.05.001
• Review, Progress and Prospects • Next Articles
GUO Chunli1(
), TANG Shengkai1, CUI Yu1, MAO Yuqiong2
Received:2025-08-14
Revised:2025-10-08
Online:2025-10-31
Published:2025-11-10
CLC Number:
GUO Chunli, TANG Shengkai, CUI Yu, MAO Yuqiong. Research progress and prospect on safety of all-solid-state batteries[J]. Journal of Automotive Safety and Energy, 2025, 16(5): 657-678.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.journalase.com/EN/10.3969/j.issn.1674-8484.2025.05.001
| 公司 | 主要内容 | 参考文献 |
|---|---|---|
| 三星SDI | 2022年建成韩国首条全固态电池试点产线“ S-Line”,自2023年开始向客户提供全固态电池样品,按计划于2027年实现商业化 | [ |
| SK On | 2024年宣布与美国全固态电池企业Solid Power进一步加深合作关系,后续开发出可在室温下工作的锂金属电池用聚合物固态电解质 2025年,宣布其在韩国大田广域市建成了全固态电池试点工厂 | [ |
| LG新能源 | 2025年宣布其新开发的硫银锗矿型硫化物固态电解质已进入大规模生产工艺开发阶段 | [ |
| 丰田汽车 | 2023年与出光兴产签署协议,联合开发硫化物固态电解质量产技术;2024年宣称其全固态电池量产计划获政府批准目标,并计划2026年正式投产 | [ |
| 日产汽车 | 2023年宣布已经成功开发出能量密度达500 Wh/kg全固态电池;2025年公布了叠层软包全固态电池电芯的试点生产设施,并计划于2028年投产 | [ |
| QuantumScape | 2024年推出QSE-5电池原型,在2025年完成了固态锂金属电池在电动摩托车的实车演示,其能量密度达844 Wh/L,支持12 min快充 | [ |
| 宁德时代 | 2025年宣布硫化物全固态电池中试线在合肥正式投产,电池能量密度达到450 Wh/kg | [ |
| 比亚迪 | 2024年成功下线60 Ah全固态电池,能量密度已突破400 Wh/kg;2025年透露计划于2027年启动全固态电池的批量示范装车应用 | [ |
| 国轩高科 | 2024年推出全固态电池,2025年宣布全固态电池已进入预量产阶段,首条全固态实验线正式贯通 | [ |
| 公司 | 主要内容 | 参考文献 |
|---|---|---|
| 三星SDI | 2022年建成韩国首条全固态电池试点产线“ S-Line”,自2023年开始向客户提供全固态电池样品,按计划于2027年实现商业化 | [ |
| SK On | 2024年宣布与美国全固态电池企业Solid Power进一步加深合作关系,后续开发出可在室温下工作的锂金属电池用聚合物固态电解质 2025年,宣布其在韩国大田广域市建成了全固态电池试点工厂 | [ |
| LG新能源 | 2025年宣布其新开发的硫银锗矿型硫化物固态电解质已进入大规模生产工艺开发阶段 | [ |
| 丰田汽车 | 2023年与出光兴产签署协议,联合开发硫化物固态电解质量产技术;2024年宣称其全固态电池量产计划获政府批准目标,并计划2026年正式投产 | [ |
| 日产汽车 | 2023年宣布已经成功开发出能量密度达500 Wh/kg全固态电池;2025年公布了叠层软包全固态电池电芯的试点生产设施,并计划于2028年投产 | [ |
| QuantumScape | 2024年推出QSE-5电池原型,在2025年完成了固态锂金属电池在电动摩托车的实车演示,其能量密度达844 Wh/L,支持12 min快充 | [ |
| 宁德时代 | 2025年宣布硫化物全固态电池中试线在合肥正式投产,电池能量密度达到450 Wh/kg | [ |
| 比亚迪 | 2024年成功下线60 Ah全固态电池,能量密度已突破400 Wh/kg;2025年透露计划于2027年启动全固态电池的批量示范装车应用 | [ |
| 国轩高科 | 2024年推出全固态电池,2025年宣布全固态电池已进入预量产阶段,首条全固态实验线正式贯通 | [ |
| [1] | FENG Xuning, OUYANG Minggao, LIU Xiang, et al. Thermal runaway mechanism of lithium ion battery for electric vehicles: a review[J]. Energ Stor Mater, 2018, 10: 246-267. |
| [2] | 中国汽车工业协会. 2025年4月新能源汽车产销情况简析[EB/OL]. 中国汽车工业协会统计信息网. (2025-05-16) http://www.auto-stats.org.cn/ReadArticle.asp?NewsID=11332. |
| China Association of Automobile Manufacturers. A brief analysis of the production and sales of new energy vehicles in april 2025[EB/OL]. Statistical Information Network of China Association of Automobile Industry, (2025-05-16) http://www.auto-stats.org.cn/ReadArticle.asp?NewsID=11332. (in Chinese) | |
| [3] | 应急管理部. 全国一季度火灾21.9万起,死亡625人![EB/OL]. 国家消防救援局, (2022-04-08) https://www.119.gov.cn/gk/sjtj/2022/28761.shtml |
| Emergency Management. In the first quarter of the year, there were 219,000 fires nationwide, resulting in 625 deaths![EB/OL]. National Fire and Rescue Bureau, (2022-04-08) https://www.119.gov.cn/gk/sjtj/2022/28761.shtml (in Chinese) | |
| [4] | WU Dengxu, WU Fan. Toward better batteries: Solid-state battery roadmap 2035+[J]. Etransportation, 2023, 16: No 100224. |
| [5] | REN Dongsheng, LU Languang, HUA Rui, et al. Challenges and opportunities of practical sulfide-based all-solid-state batteries[J]. Etransportation, 2023, 18: No 100272. |
| [6] | HUANG Qiqiang, LIU Jinquan, CHEN Xinman, et al. Recent progress and challenges of Li-rich Mn-based cathode materials for solid-state lithium-ion batteries[J]. Advan Mater, 2024, 37(5): No 2410006. |
| [7] |
LU Pushun, ZHOU Zhimin, XIAO Zuxiang, et al. Materials and chemistry design for low-temperature all-solid-state batteries[J]. Joule, 2024, 8(3): 635-657.
doi: 10.1016/j.joule.2024.01.027 URL |
| [8] |
CHEN Rusong, LI Qinghao, YU Xiqian, et al. Approaching practically accessible solid-state batteries: Stability issues related to solid electrolytes and interfaces[J]. Chem Rev, 2020, 120(14): 6820-6877.
doi: 10.1021/acs.chemrev.9b00268 pmid: 31763824 |
| [9] | ZHANG Qing, CAO Daxian, MA Yi, et al. Sulfide-based solid-state electrolytes: Synthesis, stability, and potential for all-solid-state batteries[J]. Advan Mater, 2019, 31(44): No 1901131. |
| [10] |
LI Xiaona, LIANG Jianwen, YANG Xiaofei, et al. Progress and perspectives on halide lithium conductors for all-solid-state lithium batteries[J]. Energ Environ Sci, 2020, 13(5): 1429-1461.
doi: 10.1039/C9EE03828K URL |
| [11] | HE Yesheng, WANG Junjun, RONG Changru, et al. Status of cell-level thermal safety assessments toward optimization of all-solid-state batteries[J]. Cell Rep Phys Sci, 2024, 5(7): No 102056. |
| [12] |
LIU Jie, SHEN Xiaowei, ZHOU Jinqiu, et al. Nonflammable and high-voltage-tolerated polymer electrolyte achieving high stability and safety in 4.9 V-class lithium metal battery[J]. ACS Appl Mater Interf, 2019, 11(48): 45048-45056.
doi: 10.1021/acsami.9b14147 URL |
| [13] | YAO Mingxuan, SHI Jiangtao, LUO Anhong, et al. Advances in sulfide solid-state electrolytes for lithium batteries[J]. Energ Stor Mater, 2025, 75: No 104018. |
| [14] | Yersak T A, Gonzalez Malabet H J, Yadav V, et al. Flammability of sulfide solid-state electrolytes b-Li3PS4 and Li6PS5Cl: Volatilization and autoignition of sulfur vapor: New insight into all-solid-state battery thermal runaway[J]. Energ Chem, 2025, 102: 651-660. |
| [15] | Chae O B, Lucht B L. Interfacial issues and modification of solid electrolyte interphase for li metal anode in liquid and solid electrolytes[J]. Advan Energ Mater, 2023, 13(14): No 2203791. |
| [16] |
Kang C H. Mechanical and thermal failure induced by contact between a Li1.5Al0.5Ge1.5(PO4)3solid electrolyte and li metal in an all solid-state li cell[J]. Chem Mater, 2017, 29(20): 8611-8619.
doi: 10.1021/acs.chemmater.7b02301 URL |
| [17] | 国家消防救援局、工业和信息化部、国家发展改革委, 等. 新型储能制造业高质量发展行动方案[S]. 中华人民共和国工业和信息化部, 2025. |
| National Fire Rescue Administration, Ministry of Industry and Information Technology, National Development Reform Commission, et al. Action plan for high-quality development of new-type energy storage manufacturing industry[S]. Ministry of Industry and Information Technology of the People's Republic of China, 2025. (in Chinese) | |
| [18] | 智通财经APP. 集邦咨询:日本2024年补助全固态电池相关研发最高达48.5亿人民币[EB/OL]. 搜狐网,(2025-01-02) https://www.sohu.com/a/844587197_323087. |
| ZhiTong Financial APP. TrendForce:Japan's subsidy for R&D related to all-solid-state batteries reached up to 4.85 billion yuan in 2024[EB/OL]. Sohu, (2025-01-02) https://www.sohu.com/a/844587197_323087. (in Chinese) | |
| [19] | 韩联社. 韩政府公布《新能源汽车及充电电池竞争力强化方案》[EB/OL]. 中华人民共和国商务部, (2025-01-21) https://kr.mofcom.gov.cn/jmxw/art/2025/art_cd5108fa6c69458fafdda16bd95938eb.html. |
| Yonhap News Agency. The South Korean government has unveiled the “Action Plan for Enhancing the Competitiveness of New Energy Vehicles and Charging Batteries”[EB/OL]. Ministry of Commerce of the People's Republic of China. (2025-01-21) https://kr.mofcom.gov.cn/jmxw/art/2025/art_cd5108fa6c69458fafdda16bd95938eb.html. (in Chinese) | |
| [20] | The U.S. Department of Energy. National Blueprint for Lithium Batteries 2021-2030[S]. The U.S. Department of Energy, 2021 |
| [21] | 证券时报e公司. 天赐材料:硫化物体系的固态电解质处于中试阶段[EB/OL]. 腾讯网, (2025-09-08) https://news.qq.com/rain/a/20250908A0874B00. |
| Securities Times e-Company. Tinci Materials:The solid-state electrolyte based on the sulfide system is in the pilot testing phase[EB/OL]. Tencent, (2025-09-08) https://news.qq.com/rain/a/20250908A0874B00. (in Chinese) | |
| [22] | 财联社. 容百科技:高镍及超高镍全固态正极材料均已实现吨级出货硫化物电解质中试线预计2026年初放量投产[EB/OL]. 新浪财经, (2025-09-18) https://finance.sina.com.cn/roll/2025-09-18/doc-infqwyzm4034703.shtml. |
| Caixin Media. Rongbai Technology:High-nickel and ultra-high-nickel all-solid-state cathode materials have both achieved ton-level shipments. The pilot production line for sulfide electrolyte is expected to ramp up production in early 2026[EB/OL]. Sina Finance, (2025-09-18) https://finance.sina.com.cn/roll/2025-09-18/doc-infqwyzm4034703.shtml. (in Chinese) | |
| [23] | 电池工业. LG新能源:硫化物电解质最新突破[EB/OL]. 搜狐网, (2025-04-18) https://www.sohu.com/a/886217976_120116061#. |
| Battery Industry. LG New Energy: Latest breakthrough in sulfide electrolyte[EB/OL]. Sohu, (2025-04-18) https://www.sohu.com/a/886217976_120116061#. (in Chinese) | |
| [24] | 金融界视点. 丰田固态电池最早将在2027年量产装车,充电10分钟续航1200km[EB/OL]. 腾讯网, (2025-10-09) https://news.qq.com/rain/a/20251009A06FJQ00. |
| Financial World Perspective. Toyota's solid-state batteries are expected to be mass-produced and installed in vehicles as early as 2027, with a range of 1 200 kilometers after just 10 minutes of charging[EB/OL]. Tencent, (2025-10-09) https://news.qq.com/rain/a/20251009A06FJQ00. (in Chinese) | |
| [25] | IT之家. Solid Power已向宝马交付首批固态电池样品[EB/OL]. 腾讯网, (2023-11-15) https://news.qq.com/rain/a/20231115A09IU100. |
| IT Home. Solid Power has delivered the first solid-state battery samples to BMW[EB/OL]. Tencent, (2023-11-15) https://news.qq.com/rain/a/20231115A09IU100. (in Chinese) | |
| [26] | Ting言说. 先导智能从锂电到固态电池,500亿设备蓝海谁是王者?[EB/OL]. 腾讯网. (2025-09-15) https://news.qq.com/rain/a/20250915A01HCU00. |
| Ting Said. Lead intelligence:from lithium batteries to solid-state batteries, who will be the king in the 50 billion equipment blue ocean?[EB/OL]. Tencent, (2025-09-15) https://news.qq.com/rain/a/20250915A01HCU00. (in Chinese) | |
| [27] | 搜狐网. 赢合科技固态电池设备交付,推动新能源汽车行业新革命![EB/OL]. 搜狐网, (2025-06-16) https://www.sohu.com/a/904899397_122066676. |
| Souhu. Yinghe Technology's delivery of solid-state battery equipment ushers in a new revolution for the new energy vehicle industry![EB/OL]. Sohu. (2025-06-16) https://www.sohu.com/a/904899397_122066676. (in Chinese) | |
| [28] | 奔跑的小飞侠. 干法电极技术: 重塑电池制造新范式[EB/OL]. 搜狐网, (2025-07-30) https://www.sohu.com/a/919112845_100293421. |
| Running Little Flying Man. Dry electrode technology: Shaping a new paradigm for battery manufacturing[EB/OL]. Sohu, (2025-07-30) https://www.sohu.com/a/919112845_100293421. (in Chinese) | |
| [29] | 电车商业研究. 中日固态电池局:日本玉碎冲锋、中方坚壁清野[EB/OL]. 腾讯网, (2025-02-24) https://news.qq.com/rain/a/20250224A01E4800. |
| Tram Business Research. The solid-state battery game between china and japan: Japan's aggressive advance and china's steady defense[EB/OL]. Tencent, (2025-02-24) https://news.qq.com/rain/a/20250224A01E4800. (in Chinese) | |
| [30] | 味旅物语. 全自主产线落地!宁德时代硫化物固态电池中试线投产![EB/OL]. 搜狐网, (2025-05-20) https://news.sohu.com/a/897041866_122360545. |
| Taste of Travel Stories. Full-scale independent production lines have been established! The pilot production line for CATL's sulfide-based solid-state batteries has been launched![EB/OL]. Sohu, (2025-05-20) https://news.sohu.com/a/897041866_122360545. (in Chinese) | |
| [31] | 国际电池展. 4月南京电池展|比亚迪成功下线60Ah固态电池![EB/OL]. 搜狐网, (2025-02-19) https://news.sohu.com/a/860883219_121353302. |
| International Battery Show. In April, Nanjing Battery Show | BYD successfully offline 60 Ah solid-state battery![EB/OL]. Sohu, (2025-02-19) https://news.sohu.com/a/860883219_121353302. (in Chinese) | |
| [32] | 日产中国. 加快研发步伐,推进商业应用,日产汽车公布全固态电池试点生产设施,高性能,高安全,低成本将加速多种车型电动化进程[EB/OL]. 日产中国, (2024-04-11) https://www.nissan.com.cn/news/content/5430?pushModel=1. |
| Nissan China. Speed up the pace of research and development, promote commercial applications, Nissan announced all-solid-state battery pilot production facilities, high performance, high safety, low cost will accelerate the process of electric vehicles[EB/OL]. Nissan China, (2024-04-11) https://www.nissan.com.cn/news/content/5430?pushModel=1. (in Chinese) | |
| [33] | 米粒说车. 突发!丰田公司:固态电池生产计划获得批准,不玩虚的[EB/OL]. 腾讯网, (2024-11-21) https://news.qq.com/rain/a/20241121A04PNB00. |
| Rice grain said car. News: Toyota greenlights solid-state battery production in a serious move[EB/OL]. Tencent, (2024-11-21) https://news.qq.com/rain/a/20241121A04PNB00. (in Chinese) | |
| [34] | QuantumScape. A first look at the QSE-5 B sample[EB/OL]. (2024-10-23) https://www.quantumscape.com/blog/a-first-look-at-the-qse-5-b-sample/. |
| [35] | 新华网. 欧阳明高: 预计全固态电池2027年开始装车[EB/OL]. 新华网, (2025-02-27) https://www.news.cn/auto/20250303/3b48b35b0df64b448bba5882423ad526/c.html. |
| OUYANG Minggao: All-solid-state battery is expected to start loading in 2027[EB/OL]. Xinhua Net, (2025-02-27) https://www.news.cn/auto/20250303/3b48b35b0df64b448bba5882423ad526/c.html. (in Chinese) | |
| [36] | Sanmsung SDI. 三星SDI, 全固态电池试验线开工[EB/OL]. Sanmsung SDI, (2022-03-14) https://www.samsungsdi.com.cn/sdi-now/sdi-news/2603.html. |
| Sanmsung SDI. Samsung SDI, All-solid-state battery test line starts[EB/OL]. Sanmsung SDI, (2022-03-14) https://www.samsungsdi.com.cn/sdi-now/sdi-news/2603.html. (in Chinese) | |
| [37] | Samgsung SDI. 三星SDI发布用于电动商用车的最佳电池解决方案—参加“ IAA Transportation 2024”[EB/OL]. Samgsung SDI, (2024-09-19) https://www.samsungsdi.com.cn/sdi-now/sdi-news/4105.html. |
| Sanmsung SDI. Samsung SDI announces best battery solution for electric commercial vehicles- participate in “IAA Transportation 2024”[EB/OL]. Samgsung SDI, (2024-09-19) https://www.samsungsdi.com.cn/sdi-now/sdi-news/4105.html. (in Chinese) | |
| [38] | DT新能源. SK On, 推出固态电池用新型室温聚合物电解质[EB/OL]. 搜狐网, (2024-06-26) https://www.sohu.com/a/788476928_777213. |
| DT New Energy. SK On introduces a new room temperature polymer electrolyte for solid-state batteries[EB/OL]. Sohu. (2024-06-26) https://www.sohu.com/a/788476928_777213. (in Chinese) | |
| [39] | 集邦光储观察. SK On+Solid Power!固态电池领域又一重磅签约[EB/OL]. 搜狐网, (2024-01-19) https://www.sohu.com/a/752854427_115863. |
| TrendForce PV & Storage Insights. SK On+Solid Power ! Another heavy contract in the field of solid-state batteries[EB/OL]. Sohu, (2024-01-19) https://www.sohu.com/a/752854427_115863. (in Chinese) | |
| [40] | 每日经济新闻. SK On全固态电池试点工厂正式落地,拟2029年实现商用[EB/OL]. 搜狐网, (2025-09-16) https://www.sohu.com/a/935412890_121478296. |
| Daily Financial News. SK On all-solid-state battery pilot plant officially landed, to achieve commercial use in 2029[EB/OL]. Sohu, (2025-09-16) https://www.sohu.com/a/935412890_121478296. (in Chinese) | |
| [41] | 中国汽车报. 事关1200公里续航,丰田官宣重大合作[EB/OL]. 腾讯网,(2023-10-13) https://news.qq.com/rain/a/20231013A083LT00. |
| China Automotive News. Related to 1200 kilometers of endurance, Toyota announced a major cooperation[EB/OL]. Tencent,(2023-10-13) https://news.qq.com/rain/a/20231013A083LT00. (in Chinese) | |
| [42] | 汽车网评. 日产汽车:全固态电池研发成功,成本减半,2025年开始试生产?[EB/OL]. 网易,(2023-02-18) https://www.163.com/dy/article/HTSNSP31052781GQ.html. |
| Automobile Network Review. Nissan: All-solid-state battery research and development success, cost halved, 2025 began trial production?[EB/OL]. Netease (2023-02-18) https://www.163.com/dy/article/HTSNSP31052781GQ.html. (in Chinese) | |
| [43] | Alpatent科技咨询平台. QuantumScape与PowerCo联合发布搭载固态电池的杜卡迪摩托车[EB/OL]. 搜狐网, (2025-09-17) https://www.sohu.com/a/934259855_120810173. |
| Alpatent science and technology consulting platform. QuantumScape and PowerCo co-publish Ducati Motorcycle with solid state battery[EB/OL]. Sohu, (2025-09-17) https://www.sohu.com/a/934259855_120810173. (in Chinese) | |
| [44] | 国轩高科. 国轩高科推出首款全固态电池“金石”[EB/OL]. 国轩高科, (2024-05-18) https://www.gotion.com.cn/news/companydetails/1289.html. |
| Gotion High-tech. Gotion High-tech Launches ‘Jinshi’, Its first all-solid-state battery[EB/OL]. Gotion High-tech, (2024-05-18) https://www.gotion.com.cn/news/companydetails/1289.html. (in Chinese) | |
| [45] | 国轩高科. 国轩高科:全固态建成中试线,电池实现千公里续航[EB/OL]. 国轩高科, (2025-05-21) https://www.gotion.com.cn/news/companydetails/1459.html. |
| Gotion Gotion High-tech. Southern Plus:Gotion High-tech Unveils all-solid-state battery pilot line, cell capable of 1 000-km range[EB/OL]. High-tech, (2025-05-21) https://www.gotion.com.cn/news/companydetails/1459.html. (in Chinese) | |
| [46] | YANG Shijie, HU Jiangkui, JIANG Fengni, et al. Safer solid-state lithium metal batteries: Mechanisms and strategies[J]. Info, 2024, 6(2): e12512. |
| [47] | WANG Li, CHEN Zonghai, LIU Yan, et al. Safety perceptions of solid-state lithium metal batteries[J]. Etransportation, 2023, 16: No 100239. |
| [48] |
FENG Xuning, ZHENG Siqi, REN Dongsheng, et al. Investigating the thermal runaway mechanisms of lithium-ion batteries based on thermal analysis database[J]. Appl Energ, 2019, 246: 53-64.
doi: 10.1016/j.apenergy.2019.04.009 |
| [49] |
CHEN Rusong, Nolan A M, LU Jiaze, et al. The thermal stability of lithium solid electrolytes with metallic lithium[J]. Joule, 2020, 4(4): 812-821.
doi: 10.1016/j.joule.2020.03.012 URL |
| [50] |
Gajan A, Lecourt C, Torres Bautista B E, et al. Solid electrolyte interphase instability in operating lithium-ion batteries unraveled by enhanced-raman spectroscopy[J]. ACS Energ Lett, 2021, 6(5): 1757-1763.
doi: 10.1021/acsenergylett.1c00436 URL |
| [51] |
ZHOU Yundong, Doerrer C, Kasemchainan J, et al. Observation of interfacial degradation of Li6PS5Cl against lithium metal and LiCoO2 via in situ electrochemical raman microscopy[J]. Batteries Supercaps, 2020, 3(7): 647-652.
doi: 10.1002/batt.v3.7 URL |
| [52] |
Charbonnel J, Darmet N, Deilhes C, et al. Safety evaluation of all-solid-state batteries: An innovative methodology using in situ synchrotron X-ray radiography[J]. ACS Appl Energ Mater, 2022, 5(9): 10862-10871.
doi: 10.1021/acsaem.2c01514 URL |
| [53] | 国家市场监督管理总局、 国家标准化管理委员会. GB 38031-2025. 电动汽车用动力蓄电池安全要求[S]. 北京: 中国质量标准出版传媒有限公司, 2025. |
| State Administration of Market Supervision and Administration, National Standardization Management Committee. GB 38031-2025. Safety requirements for power batteries for electric vehicles[S]. Beijing: China Quality Standards Publishing and Media Co., Ltd., 2025. (in Chinese) | |
| [54] |
CHEN Renjie, QU Wenjie, GUO Xing, et al. The pursuit of solid-state electrolytes for lithium batteries: From comprehensive insight to emerging horizons[J]. Mater Horiz, 2016, 3(6): 487-516.
doi: 10.1039/C6MH00218H URL |
| [55] | TANG Shuai, GUO Wei, FU Yongzhu. Advances in composite polymer electrolytes for lithium batteries and beyond[J]. Advan Energy Mater, 2021, 11(2): No 2000802. |
| [56] | Manthiram A, YU Xingwen, WANG Shaofei. Lithium battery chemistries enabled by solid-state electrolytes[J]. Nat Rev Mater, 2017, 2(4): No 16103. |
| [57] |
Ouhib F, Meabe L, Mahmoud A, et al. Influence of the cyclic versus linear carbonate segments in the properties and performance of CO2 -sourced polymer electrolytes for lithium batteries[J]. ACS Appl Polym Mater, 2020, 2(2): 922-931.
doi: 10.1021/acsapm.9b01130 URL |
| [58] | Agrawal R C, Pandey G P. Solid polymer electrolytes: Materials designing and all-solid-state battery applications: an overview[J]. J Phys D Appl Phys, 2008, 41(22): No 223001. |
| [59] |
CUI Yi, WAN Jiayu, YE Yusheng, et al. A fireproof, lightweight, polymer-polymer solid-state electrolyte for safe lithium batteries[J]. Nano Lett, 2020, 20(3): 1686-1692.
doi: 10.1021/acs.nanolett.9b04815 pmid: 32020809 |
| [60] |
Pielichowski K, Flejtuch K. Non-oxidative thermal degradation of poly(ethylene oxide): Kinetic and thermoanalytical study[J]. J Anal Appl Pyrol, 2005, 73(1): 131-138.
doi: 10.1016/j.jaap.2005.01.003 URL |
| [61] | LIU Xueqing, ZHANG Chang, GAO Shuyu, et al. A novel polyphosphonate flame-retardant additive towards safety-reinforced all-solid-state polymer electrolyte[J]. Mater Chem Phys, 2020, 239: No 122014. |
| [62] | Nikodimos Y, Ihrig M, Taklu B W, et al. Solvent-free fabrication of freestanding inorganic solid electrolyte membranes: challenges, progress, and perspectives[J]. Energ Stor Mater, 2023, 63: No 103030. |
| [63] | Oueldna N, Sabi N, Youcef B Youcef H. Correlation between physical properties and the electrochemical behavior in inorganic solid-state electrolytes for lithium and sodium batteries: A comprehensive review[J]. J Energ Stor, 2024, 86: No 111254. |
| [64] | KE Xinyou, WANG Yan, DAI Liming, et al. Cell failures of all-solid-state lithium metal batteries with inorganic solid electrolytes: lithium dendrites[J]. Energ Stor Mater, 2020, 33: 309-328. |
| [65] | XIANG Le, LI Xiutao, XIAO Jin, et al. Interface issues and challenges for NASICON-based solid-state sodium-metal batteries[J]. Advan Powd Mater, 2024, 3(3): No 100181. |
| [66] | ZHU Lei, WANG Youwei, WU Yongmin, et al. Boronnitride-based release agent coating stabilizes Li1.3Al0.3Ti1.7 (PO4)3/ Li interface with superior lean-lithium electro-chemical performance and thermal stability[J]. Advan Funct Mater, 2022, 32(29): No 2201136. |
| [67] | Zallocco V M, Freitas J M, Bocchi N, et al. Electro-chemical stability of a NASICON solid electrolyte from the lithium aluminum germanium phosphate (LAGP) series[J]. Solid Stat Ioni, 2022, 378: No 115888. |
| [68] | Philippe K. Inorganic solid li ion conductors: An overview[J]. Solid Stat Ioni, 2009, 180(14-16): 911-916. |
| [69] |
LU Xiaojuan, DUAN Mingyang, XIANG Jingyu, et al. Enhancement of ionic conductivity and fracture toughness by infiltrating porous Li0.33La0.56TiO3 pellets[J]. J Rare Earths, 2024, 42(2): 392-398.
doi: 10.1016/j.jre.2022.11.017 URL |
| [70] | Kalita G, Endo T, Nishi T. Recent development on low temperature synthesis of cubic-phase LLZO electrolyte particles for application in all-solid-state batteries[J]. J Allo Compd, 2023, 969: No 172282. |
| [71] | 姚忠冉, 孙强, 顾骁勇, 等. 锂离子电池氧化物固态电解质研究进展[J]. 新能源进展, 2023, 11(1): 76-84. |
| YAO Zhongran, SUN Qiang, GU Xiaoyong, et al. Research progress of oxide solid electrolyte for lithium ion battery[J]. Renew Energ Prog, 2023, 11(1): 76-84. (in Chinese) | |
| [72] |
Kobi S, Mukhopadhyay A. Structural (in)stability and spontaneous cracking of li-la-zirconate cubic garnet upon exposure to ambient atmosphere[J]. Europ Ceram Soc, 2018, 38(14): 4707-4718.
doi: 10.1016/j.jeurceramsoc.2018.06.014 URL |
| [73] |
YE Luhan, LI Xin. A dynamic stability design strategy for lithium metal solid state batteries[J]. Nature, 2021, 593(7858): 218-222.
doi: 10.1038/s41586-021-03486-3 |
| [74] |
ZHENG Nanfeng, BU Xianhui, FENG Pingyun. Synthetic design of crystalline inorganic chalcogenides exhibiting fast-ion conductivity[J]. Nature, 2003, 426: 428-432.
doi: 10.1038/nature02159 URL |
| [75] |
Dietrich C, Weber D A, Sedlmaier S J, et al. Lithium ion conductivity in Li2S-P2S5 glasses-building units and local structure evolution during the crystallization of superionic conductors Li3PS4, Li7P3S11 and Li4P2S7[J]. Mater Chem A, 2017, 5(34): 18111-18119.
doi: 10.1039/C7TA06067J URL |
| [76] | Homma K, Yonemura M, Kobayashi T, et al. Crystal structure and phase transitions of the lithium ionic conductor Li3PS4[J]. Solid Stat Ioni, 2011, 182(1): 53-58. |
| [77] | Yamane H, Shibata M, Shimane Y, et al. Crystal structure of a superionic conductor, Li7P3S11[J]. Solid Stat Ioni, 2007, 178(15-18): 1163-1167. |
| [78] |
Kamaya N, Homma K, Yamakawa Y, et al. A lithium superionic conductor[J]. Nat Mater, 2011, 10(9): 682-686.
doi: 10.1038/nmat3066 pmid: 21804556 |
| [79] |
Deiseroth H J, Kong S T, Eckert H, et al. Li6PS5X: A class of crystalline Li-rich solids with an unusually high Li+ mobility[J]. Angew Chem Int Ed, 2008, 47(4): 755-758.
doi: 10.1002/anie.v47:4 URL |
| [80] | WANG Shuo, WU Yujing, LI Hong, et al. Improving thermal stability of sulfide solid electrolytes: An intrinsic theoretical paradigm[J]. Info, 2022, 4(8): e12316. |
| [81] |
Ohtomo T, Hayashi A, Tatsumisago M, et al. Characteristics of the Li2O-Li2S-P2S5 glasses synthesized by the two-step mechanical milling[J]. J Non-Cryst Solids, 2013, 364: 57-61.
doi: 10.1016/j.jnoncrysol.2012.12.044 URL |
| [82] | Asano T, Sakai A, Ouchi S, et al. Solid halide electrolytes with high lithium-ion conductivity for application in 4 V class bulk-type all-solid-state batteries[J]. Advan Mater, 2018, 30(44): No 1803075. |
| [83] |
LI Xiaona, LIANG Jianwen, CHEN Ning, et al. Water-mediated synthesis of a superionic halide solid electrolyte[J]. Angew Chem Int Ed, 2019, 58(46): 16427-16432.
doi: 10.1002/anie.201909805 pmid: 31476261 |
| [84] | ZHAO Pei, KAINAT Javeria, LAN Jinle, et al. Air stability of inorganic electrolyte for all-solid-state lithium batteries: Advances, challenges, and perspectives[J]. Small, 2025, 21(32): No 2504753. |
| [85] |
LI Xiaona, LIANG Jianwen, ADAIR Keegan R, et al. Origin of superionic Li3Y1-xInxCl6 halide solid electrolytes with high humidity tolerance[J]. Nano Lett, 2020, 20(6): 4384-4392.
doi: 10.1021/acs.nanolett.0c01156 pmid: 32406692 |
| [86] |
Bak S M, HU Enyuan, ZHOU Yongning, et al. Structural changes and thermal stability of charged LiNixMny CozO2 cathode materials studied by combined in situ time-resolved XRD and mass spectroscopy[J]. ACS Appl Mater Interf, 2014, 6(24): 22594-22601.
doi: 10.1021/am506712c URL |
| [87] | WU Yu, ZHANG Wenjie, RUI Xinyu, et al. Thermal runaway mechanism of composite cathodes for all-solid-state batteries[J]. Advan Energ Mater, 2025, 15(23): No 2405183. |
| [88] | YAN Pengfei, ZHENG Jianming, CHEN Tianwu, et al. Coupling of electrochemically triggered thermal and mechanical effects to aggravate failure in a layered cathode[J]. Nat Commun, 2018, 9(1): No 2437. |
| [89] |
Koerver R, Aygün I, Leichtweiß T, et al. Capacity fade in solid-state batteries: Interphase formation and chemo mechanical processes in nickel-rich layered oxide cathodes and lithium thiophosphate solid electrolytes[J]. Chem Mater, 2017, 29(13): 5574-5582.
doi: 10.1021/acs.chemmater.7b00931 URL |
| [90] | Shurtz R C. A thermodynamic reassessment of lithium-ion battery cathode calorimetry[J]. Electrochem Soc, 2020, 167(14): No 140544. |
| [91] | Golubkov A W, Scheikl S, Planteu R, et al. Thermal runaway of commercial 18650 Li-ion batteries with LFP and NCA cathodes-impact of state of charge and overcharge[J]. RSC Advan, 2015, 5(70): 57171-57186. |
| [92] |
EUM Donggun, KIM Byunghoon, SONG Jun-Hyuk, et al. Coupling structural evolution and oxygen-redox electrochemistry in layered transition metal oxides[J]. Nat Mater, 2022, 21(6): 664-672.
doi: 10.1038/s41563-022-01209-1 |
| [93] |
LIN Dingchang, LIU Yayuan, CUI Yi. Reviving the lithium metal anode for high-energy batteries[J]. Nat Nanotechnol, 2017, 12(3): 194-206.
doi: 10.1038/nnano.2017.16 pmid: 28265117 |
| [94] | Aurbach D. A short review of failure mechanisms of lithium metal and lithiated graphite anodes in liquid electrolyte solutions[J]. Solid Stat Ioni, 2002, 148(3-4): 405-416. |
| [95] |
Etacheri V, Marom R, Elazari R, et al. Challenges in the development of advanced li-ion batteries: A review[J]. Energ Environ Sci, 2011, 4(9): 3243-3262.
doi: 10.1039/c1ee01598b URL |
| [96] |
Schiemann M, Bergthorson J, Fischer P, et al. A review on lithium combustion[J]. Appl Energ, 2016, 162: 948-965.
doi: 10.1016/j.apenergy.2015.10.172 URL |
| [97] | CHEN Yuqing, KANG Yuqiong, ZHAO Yun, et al. A review of lithium-ion battery safety concerns: the issues, strategies, and testing standards[J]. Energ Chem, 2021, 59: 83-99. |
| [98] |
WANG Shuo, WU Yujing, MA Tenghuan, et al. Thermal stability between sulfide solid electrolytes and oxide cathode[J]. ACS Nano, 2022, 16(10): 16158-16176.
doi: 10.1021/acsnano.2c04905 pmid: 36220054 |
| [99] |
RUI Xinyu, REN Dongsheng, LIU Xiang, et al. Distinct thermal runaway mechanisms of sulfide-based all-solid-state batteries[J]. Energ Environ Sci, 2023, 16(8): 3552-3563.
doi: 10.1039/D3EE00084B URL |
| [100] | YANG Lufeng, ZHANG Jin, XUE Weiran, et al. Anomalous thermal decomposition behavior of polycrystalline LiNi0.8Mn0.1Co0.1O2 in PEO-based solid polymer electrolyte[J]. Advan Funct Mater, 2022, 32(23): No 2200096. |
| [101] |
Lee S, Kim Y, Park C, et al. Interplay of cathode-halide solid electrolyte in enhancing thermal stability of charged cathode material in all-solid-state batteries[J]. ACS Energ Lett, 2024, 9(4): 1369-1380.
doi: 10.1021/acsenergylett.4c00033 URL |
| [102] |
Kaboli S, Girard G, ZHU Wen, et al. Thermal evolution of NASICON type solid-state electrolytes with lithium at high temperature via in situ scanning electron microscopy[J]. Chem Commun, 2021, 57(84): 11076-11079.
doi: 10.1039/D1CC04059F URL |
| [103] | WU Yujing, XU Jing, LU Pushun, et al. Thermal stability of sulfide solid electrolyte with lithium metal[J]. Advan Energ Mater, 2023, 13(36): No 2301336. |
| [104] |
Vishnugopi B S, Hasan M T, ZHOU Hanwei, et al. Interphases and electrode crosstalk dictate the thermal stability of solid-state batteries[J]. ACS Energ Lett, 2023, 8(1): 398-407.
doi: 10.1021/acsenergylett.2c02443 URL |
| [105] |
Riegger L M, Schlem R, Sann J, et al. Lithium-metal anode instability of the superionic halide solid electrolytes and the implications for solid-state batteries[J]. Angew Chem Int Ed, 2021, 60(12): 6718-6723.
doi: 10.1002/anie.202015238 pmid: 33314609 |
| [106] |
FU Yuanyuan, MA Cheng. Interplay between Li3YX6 (X = Cl or Br) solid electrolytes and the Li metal anode[J]. Sci China Mater, 2021, 64(6): 1378-1385.
doi: 10.1007/s40843-020-1580-3 |
| [107] | Monroe C, Newman J. Dendrite growth in LithiumÕPolymer systems[J]. Electrochem Soc, 2003, 150: A1377. |
| [108] |
CAO Daxian, SUN Xiao, LI Qiang, et al. Lithium dendrite in all-solid-state batteries: Growth mechanisms, suppression strategies, and characterizations[J]. Matter, 2020, 3(1): 57-94.
doi: 10.1016/j.matt.2020.03.015 URL |
| [109] |
Harry K J, Hallinan D T, Parkinson D Y, et al. Detection of subsurface structures underneath dendrites formed on cycled lithium metal electrodes[J]. Nat Mater, 2014, 13(1): 69-73.
doi: 10.1038/nmat3793 pmid: 24270584 |
| [110] | Schumacher B, Alvarez M R, Kwon Y, et al. When short-circuits fall short: the thermal consequences of lithium metal internal short-circuits[J]. ACS Energ Lett, 2025: 4074-4081. |
| [111] | Kim K T, Kim J S, Baeck K H, et al. Surface fluorination shielding of sulfide solid electrolytes for enhanced electrochemical stability in all-solid-state batteries[J]. Advan Mater, 2025, 37(35): No 2416816. |
| [112] | WANG Shuhao, XU Xiaowei, CUI Can, et al. Air sensitivity and degradation evolution of halide solid state electrolytes upon exposure[J]. Advan Funct Mater, 2022, 32(7): No 2108805. |
| [113] |
FENG Xuning, REN Dongsheng, OUYANG Minggao. Safety of lithium battery materials chemistry[J]. Mater Chem A, 2023, 11(46): 25236-25246.
doi: 10.1039/D3TA04182D URL |
| [114] | HE Yan, GUO Jinpeng, BI Chuanchuan, et al. Sandwich-like polyimide nanofiber membrane of PEO-based solid-state electrolytes to promote mechanical properties and security for lithium metal batteries[J]. Int'l J Hydro Energ, 2025, 109: 1266-1273. |
| [115] | FU Lin, WAN Mintao, ZHANG Bao, et al. A Lithium Metal Anode Surviving Battery Cycling Above 200 ℃[J]. Advan Mater, 2020, 32(29): No 2000952. |
| [116] | Jung J, You M J, Hong Y, et al. Highly conductive Li-excess oxide to facilitate durable interfaces in AllhSolid-state batteries[J]. Small, 2025, 21(32): No 2504127. |
| [117] | WANG Changhong, LIANG Jianwen, LUO Jing, et al. A universal wet-chemistry synthesis of solid-state halide electrolytes for all-solid-state lithium-metal batteries[J]. Sci Advan, 2021, 7(37): eabh1896. |
| [118] |
Umeshbabu E, Maddukuri S, HU Yang, et al. Influence of chloride ion substitution on lithium-ion conductivity and electrochemical stability in a dual-halogen solid-state electrolyte[J]. ACS Appl Mater Interface, 2022, 14(22): 25448-25456.
doi: 10.1021/acsami.2c04160 URL |
| [119] | YU Tianwei, LIANG Jianwen, LUO Liang, et al. Superionic fluorinated halide solid electrolytes for highly stable Li-metal in all-solid-state Li batteries[J]. Advan Energ Mater, 2021, 11(36): No 2101915. |
| [120] |
CHEN Butian, ZHANG Jicheng, ZHANG Tianran, et al. Directly using Li2CO3 as a lithiophobic interlayer to inhibit Li dendrites for high-performance solid-state batteries[J]. ACS Energ Lett, 2023, 8(5): 2221-2231.
doi: 10.1021/acsenergylett.3c00546 URL |
| [121] | LU Pushun, WU Dengxu, CHEN Liquan, et al. Air stability of solid-state sulfide batteries and electrolytes[J]. Electrochem Energ Rev, 2022, 5(3). (2022-08-11) https://doi.org/10.1007/s41918-022-00149-3. |
| [122] | PENG Linfeng, LIAO Cong, PENG Jiayue, et al. Effect of oxygen doping sources on enhancing air stability and lithium metal compatibility of Li5.5PS4.5Cl1.5 electrolyte[J]. Chin Chem Lett, 2025: No 111015. |
| [123] | Lee S, Kim J, Park C H, et al. Fluoride-rich sulfide solid electrolyte with ultrahigh air stability for all-solid-state batteries[J]. Small, 2025: No 2411349. |
| [124] | Choi Y J, Hwang Y J, Kim S I, et al. Triple-doped argyrodite sulfide electrolyte with improved air stability and lithium compatibility for all-solid-state Li-metal batteries[J]. Chem Eng J, 2024, 497: No 154426. |
| [125] | 张谨. 石油开采过程中硫化氢泄漏监测与防控技术研究[J]. 化工安全与环境, 2025, 38(7): 66-69. |
| ZHANG Jin. Research on monitoring and prevention and control technology of hydrogen sulfide leakage during oil exploitation[J]. Chem Safe Environ, 2025, 38(7): 66-69. (in Chinese) | |
| [126] | 王成, 彦鹏. 双马煤矿含硫煤层硫化氢治理研究分析[J]. 煤矿现代化, 2022, 31(6): 38-41+45. |
| WANG Cheng, YAN Peng. Study and analysis of hydrogen sulfide control in sulfur-bearing coal seam of shuangma coal mine[J]. Coal Mine Modern, 2022, 31(6): 38-41,45. (in Chinese) | |
| [127] | 吴志勇. 含硫化氢油井高效治理技术研究及应用[J]. 安全、健康和环境, 2024, 24(6): 34-37. |
| WU Zhiyong. Research and application of efficient treatment technology for oil wells containing hydrogen sulfide[J]. Safe, Heal Environ, 2024, 24(6): 34-37. (in Chinese) |
| [1] | ZHANG Fan, YU Feng, HU Xinlei, ZHANG Zihan, ZHU Yu, JIANG Tenglong, PEI Tianxiao, SHEN Jinhua, CANG Xuejun, LI Quan, ZHOU Qing, WANG Chen. Evaluation method and influencing factor analysis of safety events for combined driver assistance system [J]. Journal of Automotive Safety and Energy, 2026, 17(2): 179-187. |
| [2] | HUANG Zhishan, PAN Di, HAN Yong, XIAO Zonghan, LIU Hui, QIN Zhenyuan. Effects of occupant anthropometry on thoracolumbar injury risk in reclined postures during frontal collisions [J]. Journal of Automotive Safety and Energy, 2026, 17(1): 50-58. |
| [3] | MA Teng, MA Yulin, LI Yicheng, PAN Jiabao, XU Shucai. Quantitative evaluation of automated driving safety oriented general functions detection [J]. Journal of Automotive Safety and Energy, 2026, 17(1): 59-69. |
| [4] | ZHAO Jian, GONG Jue, FAN Kefeng, LIU Pengbo, LI Linhui, WANG Xiang, XU Zheng, DONG Zeyuan, YAO Nianmin. Safety and protection technologies for intelligent vehicles with strongly coupled structural, functional and information domains [J]. Journal of Automotive Safety and Energy, 2025, 16(6): 813-831. |
| [5] | LI Yixuan, WU Xiao, TANG Kai, LI Zheng. Research on electrical vehicle's sliding mode in small overlap impact crash test [J]. Journal of Automotive Safety and Energy, 2025, 16(6): 867-876. |
| [6] | GUAN Yongxue, LIU Senhai, HAN Yong, XU Li, SHU Weibin, FAN Chenxu. A coupled decision-making and trajectory planning approach for vehicle emergency collision avoidance in multi-obstacle scenarios [J]. Journal of Automotive Safety and Energy, 2025, 16(6): 945-954. |
| [7] | DENG Gongxun, CAI Yani, LEI Feibing, LIU Hengjin, QI Lulin, FAN Yubo. Effect of vehicle crash severity and advanced restraint system parameters on occupant injuries [J]. Journal of Automotive Safety and Energy, 2025, 16(5): 698-706. |
| [8] | TIAN Yang, LI Xiangpeng, FAN Yihong, LI Zhaonan, LI Liang. Improved secondary prediction algorithm for tripping and non-tripping rollover for rollover warning [J]. Journal of Automotive Safety and Energy, 2025, 16(5): 707-715. |
| [9] | LI Hao, ZHOU Hao. Emergency vehicle detection in noisy environments based on acoustic spectral-temporal information fusion [J]. Journal of Automotive Safety and Energy, 2025, 16(4): 529-538. |
| [10] | ZHU Huiting, MOU Yanyan, LAN Yang, XIANG Lei, YANG Jie, CHENG Zhihua, WANG Junliang, YANG Na. Protective effect of mechanical massage car seat on occupant injury in rear-end collision [J]. Journal of Automotive Safety and Energy, 2025, 16(4): 539-547. |
| [11] | GAO Chaojun, LI Yicheng, CAI Yingfeng, WANG Hai, JIANG Jin. Research on AEB control of autonomous vehicles based on sensor fusion perception [J]. Journal of Automotive Safety and Energy, 2025, 16(4): 629-637. |
| [12] | FANG Xibo, NING Yigao, ZHAO Xuan, ZHOU Meng. Adaptive identification of dynamic parameters for commercial buses based on SQP and GRNN [J]. Journal of Automotive Safety and Energy, 2025, 16(4): 648-656. |
| [13] | LIU Yu, ZHANG Huida, WU Xiaofan, JIANG Han, LI Guibing. Comparative analysis of driver response between Chinese and western drivers under various collision conditions [J]. Journal of Automotive Safety and Energy, 2025, 16(3): 376-385. |
| [14] | ZOU Tiefang, FU Xijun, LI Yanchun. Intelligent vehicle grading warning and braking system based on projection warning [J]. Journal of Automotive Safety and Energy, 2025, 16(3): 405-413. |
| [15] | LIU Guosheng, SU Xiner, WANG Jianfeng, LIU Zhenwei. Night lane detection method based on deep generation network [J]. Journal of Automotive Safety and Energy, 2025, 16(3): 452-462. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||