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europepmc
2026
置信度 0.80
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europepmc
2026
置信度 0.80
-
europepmc
2026
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
-
europepmc
2026
置信度 0.80
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europepmc
2025
置信度 0.80
-
europepmc
2026
置信度 0.80
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europepmc
2026
置信度 0.80
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europepmc
2026
置信度 0.80
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europepmc
2026
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
-
europepmc
2026
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
-
europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
-
europepmc
2026
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2023
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2025
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2023
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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europepmc
2024
置信度 0.80
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Conventional direct regeneration struggles to restore the electrochemical performance of spent cathodes, particularly long-term cycling stability, and this challenge is amplified for unsorted mixed waste streams. Instead of restoring reversible electrochemical…
pubmed
Liu G, Yang Z, Yang F, Nie Q 等
2026 Aug 6
置信度 0.82
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Low-melting mixture solvents (LoMMSs) were proposed in 2023 by Yu's group at Tsinghua University as the third generation of novel green solvents, representing a major advance following ionic liquids and deep eutectic solvents. However, there is no review about…
pubmed
Chen Y, Liu Z, Zhang Y, Jing X
2026 Aug
置信度 0.82
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Solid polymer electrolytes offer a promising route to safer lithium metal batteries, but strong Li + -TFSI - coupling and insufficient salt dissociation limit their room-temperature conductivity. Introducing Lewis acidic sites to competitively bind TFSI - can …
pubmed
Li W, Luo C, Xie F, Liu H 等
2026 Aug 5
置信度 0.82
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Stacking pressure plays a critical role in maintaining the electrochemical performance of solid-state batteries (SSBs), including anode-free solid-state batteries (AFSSBs). Nevertheless, the influence of stacking pressure on interface properties remains insuff…
pubmed
Liang J, Bohnen M, Müller R, Leiter R 等
2026 Aug 5
置信度 0.82
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Transition metal-supported nitrogen-doped carbon materials possess the advantages of high catalytic activity and large specific surface area; therefore, they are considered to be the most promising cathode catalysts for lithium-sulfur batteries. However, their…
pubmed
Zhang X, Lv Q, Ji S, Liu H 等
2026 Aug
置信度 0.82
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Iron-based fluorides (FeF 3 , FeF 2 ) are used as conversion-type cathode materials. With their high theoretical specific capacity, abundant resources, and low cost, they have become promising candidates for next-generation high-energy-density lithium-ion batt…
pubmed
Cheng A, Tang R, Chai J, Peng Y 等
2026 Aug 5
置信度 0.82
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High-voltage lithium (Li) metal batteries (LMBs) are regarded as strong candidates for next-generation high-specific-energy storage devices. However, interfacial side reactions (ISRs) (particularly the often-overlooked chemical corrosion) and Li dendrite lead …
pubmed
Xu B, Wu Y, Ke R, Yan K 等
2026 Aug 5
置信度 0.82
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Sodium-ion batteries are cost-effective and sustainable alternatives to lithium-ion batteries. Recently, metal anode batteries have gained prominence over metal-ion systems due to their higher theoretical capacities. However, sodium metal batteries employing c…
pubmed
Sarkar R, Fasulo F, Muñoz-García AB, Tirri B 等
2026 Jul 30
置信度 0.82
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Solid-state and quasi-solid-state lithium metal batteries are widely regarded as a promising solution to overcome the energy density and safety limitations of conventional lithium-ion technology. However, their practical implementation is critically hindered b…
pubmed
Staffolani A
2026 Aug 5
置信度 0.82
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Porous carbons are indispensable for supercapacitors and as hosts for silicon anodes in next-generation lithium-ion batteries, yet their commercialization is crippled by the low carbon yield of phenolic resin precursors. What fundamentally controls the yield a…
pubmed
Li Z, Di C, Zhang D, Sun H 等
2026 Aug 5
置信度 0.82
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Deep eutectic solvents have emerged as promising media for the sustainable recycling of spent lithium-ion batteries (LIBs). In this work, a tetraethylammonium chloride citric acid (TEAC-CA) based deep eutectic solvent (DES) system was developed for the recover…
pubmed
Han L, Chen Y, Luo Z, Luo K 等
2026 Aug 3
置信度 0.82
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Although lithium-sulfur (Li-S) batteries exhibit extensive potential application as a novel type of rechargeable battery, their practical implementation is hindered by the shuttle effect of soluble polysulfides and the sluggish redox kinetics involved in conve…
pubmed
Yu Z, Kuai Y, Lin J, Yang M 等
2026 Aug 3
置信度 0.82
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Developing high-performance, long-life lithium-ion batteries requires an in-depth understanding of cathode material synthesis, lithium-ion (de)intercalation mechanisms, and structural failure processes. Traditional ex situ characterization techniques, however,…
pubmed
Zhao X, Lou J, Gao J, Pang S 等
2026 Aug 3
置信度 0.82
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A cross-linked ionic conducting elastomer with multiple dynamic bonds is prepared via in situ polymerization to achieve fast Li + conduction and self-healing during operational cycling. The resulting LiFePO 4 full cells achieve 3000 and 1200 cycles at high rat…
pubmed
Zhang X, Jiang Y, Luo P, Huang L 等
2026 Aug 3
置信度 0.82
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Long-term cycleability of lithium-ion batteries is limited by interfacial degradation and irreversible lithium loss from parasitic electrolyte decomposition after solid electrolyte interphase formation. In this study, an ionic molecule with individually functi…
pubmed
Park J, Byun J, Lee CR, Kim HS
2026 Aug 2
置信度 0.82
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The spatial architecture of the solid electrolyte interphase (SEI) critically affects the cycling stability of lithium batteries. Although electrolyte formulation is widely used to regulate SEI chemistry, external-field control of its spatial organization duri…
pubmed
Liu Y, Liang H, Wang P, Li J 等
2026 Jul 30
置信度 0.82
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Lithium-free anodes can significantly enhance the energy density and simplify the structure of batteries by eliminating conventional anode materials. However, uneven lithium deposition often leads to dendrite growth and interfacial instability, severely compro…
pubmed
Zhao H, Xue J, Ye C, Wang F 等
2026 Jul 28
置信度 0.82
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Ca metal anode suffers from surface passivation and struggles to effectively plate and strip in conventional Ca electrolytes, making the development of alloy anode for calcium metal battery essential. This work systematically and carefully evaluates the electr…
pubmed
Cora S, Ge M, Liu H, Briselli V 等
2026 Jul 28
置信度 0.82
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Lithium-ion battery (LIB) performance and safety are strongly dictated by the properties of the separator, which governs ion transport, interfacial stability, and resistance to dendrite penetration. In recent years, cellulose and its derivatives have emerged a…
pubmed
Zuluaga-Gómez CC, Narváez-Lozano GA, Robles-Alfonso SD, Cruz-Lebrón J 等
2026 Jul 28
置信度 0.82