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1.中国科学院物理研究所,北京 100190
2.松山湖材料实验室,广东 东莞 523890
3.中国 科学院武汉文献情报中心,湖北 武汉 430071
Received:27 April 2026,
Published:28 May 2026
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李珞宁, 孙蔷馥, 岑官骏, 等. 锂电池百篇论文点评(2026.2.1—2026.3.29)[J]. 储能科学与技术, 2026, 15(5): 1960-1980.
LI Luoning, SUN Qiangfu, CEN Guanjun, et al. Reviews of selected 100 recent papers for lithium batteries (Feb. 1, 2026 to Mar. 29, 2026)[J]. Energy Storage Science and Technology, 2026, 15(5): 1960-1980.
李珞宁, 孙蔷馥, 岑官骏, 等. 锂电池百篇论文点评(2026.2.1—2026.3.29)[J]. 储能科学与技术, 2026, 15(5): 1960-1980. DOI: 10.19799/j.cnki.2095-4239.2026.0358.
LI Luoning, SUN Qiangfu, CEN Guanjun, et al. Reviews of selected 100 recent papers for lithium batteries (Feb. 1, 2026 to Mar. 29, 2026)[J]. Energy Storage Science and Technology, 2026, 15(5): 1960-1980. DOI: 10.19799/j.cnki.2095-4239.2026.0358.
该文是一篇近两个月的锂电池文献评述,以“lithium”和“batter*”为关键词检索了Web of Science从2026年2月1日至2026年3月29日上线的锂电池研究论文,共有4200篇,选择其中100篇加以评论。正极材料研究以高镍层状氧化物、富锂锰基及部分新型锰基与有机正极为主,重点关注体相掺杂、表面包覆、异质结构构筑及循环过程中的结构稳定性。负极材料方面,金属锂负极为研究重点,集中于三维宿主构筑、合金化调控、人工界面设计及沉积行为调节,硅基负极则涉及三维结构设计。电解质研究涵盖卤化物、硫化物、氧化物、氟化物、聚合物及其复合固态电解质,同时也包括面向高电压、宽温域及高安全需求的液态电解液与添加剂设计。电池技术方面,全固态锂电池仍是关注重点,干法电极、界面缓冲层、枝晶抑制及低压实运行等均有进展,并兼顾锂硫电池正极设计与催化调控、无负极及黄铁矿等新体系探索。表征分析主要涉及锂沉积与扩散、界面演化及固态电解质稳定性。电池回收方面涉及预处理过程的生命周期评价、机械化学回收及电化学浸出等湿法路线。计算和深度学习则聚焦于电极应力-输运耦合、扩散动力学、固态电解质筛选及智能化状态估计。
This bimonthly review paper highlights 100 recent papers on lithium batteries. We searched the Web of Science and found 4200 papers online from Feb. 1
2026 to Mar. 29
2026
from which 100 were selected for comments. The studies on cathode materials are focused on high-nickel layered oxides
Li-rich manganese-based oxides and some emerging manganese-based and organic cathodes
with particular attention paid to bulk doping
surface coating
heterostructure construction and structural stability upon cycling. For anode materials
lithium metal anodes are the major focus
concentrating on 3D host construction
alloying regulation
artificial interphase design and deposition behavior modulation
while Si-based anodes involve 3D structural design. Electrolyte studies cover halide
sulfide
oxide
fluoride
polymer and composite solid-state electrolytes
together with liquid electrolytes and additives designed for high-voltage
wide-temperature and high-safety applications. For battery technologies
all-solid-state lithium batteries remain the focus
with progress in dry-process electrodes
interfacial buffer layers
dendrite suppression and low-pressure operation
along with cathode design and catalytic regulation for lithium-sulfur batteries and explorations of anode-free and pyrite-based systems. Characterization studies mainly cover lithium deposition and diffusion
interfacial evolution and solid electrolyte stability. Battery recycling involves life-cycle assessment of pretreatment processes
mechanochemical recycling and hydrometallurgical routes based on electrochemical leaching. Calculations and deep learning are directed to coupled stress-transport behavior of electrodes
diffusion kinetics
screening of solid electrolytes and intelligent state estimation.
ZHAO G Q, SUN Y J, WANG X, et al. Uncovering electrochemical-mechanical interplay of stable ultrahigh-nickel cathode via fine structure regulation[J ] . Advanced Materials, 2026, 38(16): e23526. DOI:10.1002/adma.202523526.
EUM D, RAMACHANDRAN H, SUN T X, et al. Uniform pore structure enables negligible degradation in undoped and uncoated Ni-rich cathodes[J]. Nature Energy, 2026, 11(4): 593-602. DOI:10.1038/s41560-026-01988-w.
CHEN J, WANG H J, SUN J G, et al. Achieving long-life high-voltage Ni-rich cathodes by mitigating lattice and grain-boundary degradation[J]. Chemical Engineering Journal, 2026, 534: 17491 2. DOI:10.1016/j.cej.2026.174912.
LIANG J T, YAN D L, ZHANG X M, et al. Wadsley-Roth phase armored ultra-stable Ni-rich cathodes via synergistic interfacial engineering[J ] . Advanced Functional Materials, 2026, e75050. DOI:10.1002/adfm.75050.
WANG Y, NI D X, LI H, et al. High-voltage and stable co-free LiNiO 2 positive electrode for sulfide-based all-solid-state batteries[J ] . Nature Communications, 2026, 17: 3661. DOI:10.1038/s414 67-026-70405-3.
ZHAO B S, REN D S, LI D Q, et al. Microstructure-tailored Ni-rich cathode with fast Li + diffusion layer boosts high-rate and long-cycling all-solid-state batteries[J ] . Joule, 2026, 10(3): 102273. DOI:10.1016/j.joule.2025.102273.
KWON O, OH G, HIROSE T, et al. High-temperature-compatible surface engineering with Li 2 WO 4 for interfacial activation in sulfide-based all-solid-state batteries[J ] . Journal of Power Sources, 2026, 672: 239521. DOI:10.1016/j.jpowsour.2026. 239521.
SUN Y P, MA J J, YAO X Z, et al. Atomic level fabrication of oxychloride interface for high-rate and high-voltage lithium-ion batteries[J]. Angewandte Chemie International Edition, 2026, 65(11): e17806. DOI:10.1002/anie.202517806.
CHEN Y, HUANG L, GHANI A, et al. Gradient-modified Li-rich manganese-based oxides cathodes with breakthrough of kinetic limitation for high-performance all-solid-state lithium metal batteries[J]. Advanced Materials, 2026, 38(13): e21690. DOI:10. 1002/adma.202521690.
LIU H H, SHEN T, ZHU X H, et al. Interface-mediated jahn–teller effect in a structure-reinforced LiMnO 2 Cathode[J ] . Journal of the American Chemical Society, 2026, 148(7): 7388-7400. DOI:10. 1021/jacs.5c20036.
LI Z F, TANG H R, LIANG Y Y, et al. Practical lithium-organic batteries enabled by an n-type conducting polymer[J]. Nature, 2026, 651(8104): 100-106. DOI:10.1038/s41586-026-10174-7.
ZHU X J, XIA S J, ZHENG H N, et al. Three‐dimensional "Breathable" silicon anodes for durable all-solid-state lithium batteries[J]. Energy Storage Materials, 2026, 86: 104939. DOI:10.1016/j.ensm.2026.104939.
WANG Y H, TAN S J, ZHANG C H, et al. Engineering thin 3D Li-composite foil negative electrodes with high mechanical toughness[J]. Nature Communications, 2026, 17: 2345. DOI:10. 1038/s41467-026-69155-z.
HU X, CHEN Y M, FU Y F, et al. Revolutionizing lithium metal anodes with 3D-printed topology-optimized hosts for enhanced stability[J]. Advanced Science, 2026, e21086. DOI:10. 1002/advs.202521086.
LIN W R, ZHOU K, YANG C, et al. Dynamic anode/cathode-electrolyte interface induced through polymer evolution for durable lithium metal batteries[J]. Journal of the American Chemical Society, 2026, 148(7): 7056-7064. DOI:10.1021/jacs.5c18082.
SHANGGUAN T T, KONG X K, ZHANG Y Y, et al. Topological regulation of lithium metal anode for ultra-stable cycling via thermodynamic-kinetic balancing[J ] . Chemical Engineering Journal, 2026, 528: 172505. DOI:10.1016/j.cej.2025.172505.
DENG L Q, WANG Z F, QI H Y, et al. Realizing ≥99.9% Li plating/stripping coulombic efficiency in a solid-state Li metal battery via constant interfacial contact-targeted zero-volume-change host design[J ] . ACS Nano, 2026, 20(10): 8394-8405. DOI:10.1021/acsnano.5c18814.
LIU L Q, WANG B, TU Y, et al. Sequenced interfacial chemistry for stabilizing reactive lithium metal anodes[J]. Journal of the American Chemical Society, 2026, 148(12): 12921-12931. DOI:10.1021/jacs.5c21643.
WANG J X, ZHU J W, CAI Y C, et al. Multicomponent solid-solution alloy negative electrode for Li-metal batteries[J]. Nature Communications, 2026, 17: 3958. DOI:10.1038/s41467-026-70301-w.
KIM J S, PARK H, KIM H Y, et al. Universal oxychlorination strategy in halide solid electrolytes for all-solid-state batteries[J]. Advanced Energy Materials, 2026, e06744. DOI:10.1002/aenm.202506744.
GAMI P, KUMAR S. High-performance composite electrolytes for solid-state lithium metal batteries: Enhancing ionic conductivity and interfacial compatibility through polyvinylpyrrolidone blending and inorganic filler incorporation[J]. Journal of Power Sources, 2026, 668: 239382. DOI:10.1016/j.jpowsour.2026.239382.
CHEN Y, JING L, CAI W R, et al. A gradient nanodomain high-entropy polymer electrolyte tape for pressure-free solid-state lithium batteries[J]. Advanced Materials, 2026, 38(12): e20657. DOI:10.1002/adma.202520657.
TANG W, WANG F L, LIANG S K, et al. Polyanion-stabilized amorphous halide electrolytes with low lithium content for all-solid-state lithium batteries[J]. Nature Communications, 2026, 17: 3326. DOI:10.1038/s41467-026-69737-x.
WANG F, YANG B, HUANG C, et al. Flexible interfacial modification layers towards enhanced performance in LATP-based all-solid-state batteries[J]. Journal of Materials Chemistry A, 2026, 14(9): 5273-5281.
ASAKURA T, IZAWA R, SATO S, et al. Oxygen- and fluorine-doped Li 3 PS 4 Glass-ceramic electrolytes compatible with lithium metal electrodes for all-solid-state batteries[J ] . Chemistry of Materials, 2026, 38(3): 1253-1260. DOI:10.1021/acs.chemmater. 5c02634.
CUI Y, SHI S S, LU C K, et al. In-situ coupled macromolecular bridge enables all-solid-state lithium metal batteries capable of extremely high temperature operation[J ] . Carbon Neutralization, 2026, 5(1): e70099. DOI:10.1002/cnl2.70099.
KIM M, KWON Y, SEO J, et al. Ion-conducting cavity filler enabling in-situ formation of SEI in sulfide-based solid electrolyte sheets for all-solid-state batteries[J ] . Chemical Engineering Journal, 2026, 529: 173036. DOI:10.1016/j.cej.2026.173036.
LI Y J, HAO W, YUE X Y, et al. Highly electronegative anions doping effects in sulfide-based electrolytes: Toward high-voltage all-solid-state batteries[J]. Advanced Energy Materials, 2026, e70855. DOI:10.1002/aenm.70855.
ZHAO Y F, YANG H T, HU Z H, et al. Catalyzing Li-salt dissociation and decomposition for a conformal low-impedance solid electrolyte interphase in solid-state Li metal batteries[J]. Journal of the American Chemical Society, 2026, 148(11): 11540-11550. DOI:10.1021/jacs.5c16750.
YANG J G, ZHANG R Z, ZIMMERMANNS R, et al. Tailored redox-active catholytes enabling high-rate and high-loading all-solid-state lithium-sulfur batteries[J]. Advanced Materials, 2026, 38(15): e13204. DOI:10.1002/adma.202513204.
PENG G, HUANG Z Y, WU Z, et al. Toward affordable all-solid-state lithium batteries: A novel Li 2 S-free synthesis for high-performance sulfide electrolytes with $16.85/kg low cost[J ] . Small, 2026, 22(21): e72986. DOI:10.1002/smll.72986.
JIN H M, WANG X Y, ZHANG S M, et al. Boosting ionic conductivity of fluoride electrolytes by polyanion coordination chemistry enabling 5 V-Class all-solid-state batteries[J]. Joule, 2026, 10(1): 102233. DOI:10.1016/j.joule.2025.102233.
LI R, WEN S H, XU K Q, et al. Ultrahigh ionic conductivity in halide electrolytes enabled by anion framework flexibility engineering[J]. Journal of the American Chemical Society, 2026, 148(3): 3114-3127. DOI:10.1021/jacs.5c15937.
PARK Y, JANG M, KIM J, et al. Oxygen-induced lithium inter-cage conduction for enhanced performance in all-solid-state batteries[J]. eScience, 2026, 6(3): 100502. DOI:10.1016/j.esci. 2025.100502.
WANG Z, YU K Z, TUO W J, et al. Fluorine inducing dynamic cathode/electrolyte interphase for high-voltage all-solid-state batteries[J]. Journal of Power Sources, 2026, 673: 239699. DOI:10.1016/j.jpowsour.2026.239699.
HE Z Y, YU T, LIANG L X, et al. Self-adaptive superionic electrolytes via multiple-cation modulation for all-solid-state lithium-metal batteries[J ] . Journal of the American Chemical Society, 2026, 148(12): 12805-12815. DOI:10.1021/jacs.5c20920.
SHEN J D, KIM G, CHUNG J W, et al. Engineering electronic radial effects for fast Li + transport in solid-state electrolytes[J ] . Advanced Materials, 2026, 38(13): e20337. DOI:10.1002/adma. 202520337.
ZHOU H T, GU J, ZHOU H Y, et al. Interfacial solvent molecular engineering via high-safety dense separators for high-rate lithium-ion batteries[J ] . Energy & Environmental Materials, 2026, e70303. DOI:10.1002/eem2.70303.
LEE J, DO MUN S, CHOI S H, et al. Iodine-driven artificial SEI layer for high performance lithium metal batteries in an SO 2 -based electrolyte[J ] . Journal of Materials Chemistry A, 2026, 14(15): 8836-8845.
SCHOLL J, SCHARPMANN P, BAGHERI A, et al. Beyond the lab: Real-world composition of commercial Li-ion battery electrolytes[J]. Journal of Power Sources, 2026, 673: 239739. DOI:10.1016/j.jpowsour.2026.239739.
WU L Q, ZHANG J Y, LI Y, et al. Hydrofluorocarbon electrolytes for energy-dense and low-temperature batteries[J]. Nature, 2026, 651(8105): 383-389. DOI:10.1038/s41586-026-10210-6.
DENG J X, WANG X G, LU H, et al. Functionalized and customized electrolyte enabling NCM811||Gr pouch cells operation at 150℃[J]. Advanced Energy Materials, 2026, 16(14): e70718. DOI:10.1002/aenm.70718.
ZHU Z X, WU X B, XU H, et al. Molecular engineering of fluorinated hybrid gel polymer electrolytes enables ultra-wide-temperature operation of high-voltage lithium metal batteries[J]. Advanced Energy Materials, 2026, 16(15): e06074. DOI:10.1002/aenm.202506074.
YANG Z H, ZENG L C, JU Z Y, et al. Electrolyte chemistry of adaptive hydrogen bonded domains for high voltage lithium metal batteries[J]. Nature Communications, 2026, 17: 2379. DOI:10. 1038/s41467-026-69160-2.
CHEN C, WANG S N, ZHANG L Z. Structure tailoring of trisiloxane as electrolyte additive for high voltage and high temperature LiNi 0.8 Co 0.1 Mn 0.1 O 2 batteries[J ] . Chemical Engineering Journal, 2026, 534: 175010. DOI:10.1016/j.cej. 2026.175010.
LUO C, NING C P, HUANG X H, et al. Benzonitrile-based electrolyte with tighter aggregate solvation structure enables ultralong cycling and high-rate 4.5 V lithium metal batteries[J]. Advanced Materials, 2026, 38(21): e72819. DOI:10.1002/adma. 72819.
LI M L, LU D, WANG J Z, et al. Solvation sheath reorganization enables fast ion transfer kinetics in lithium-ion battery[J]. Nature Communications, 2026, 17: 3953. DOI:10.1038/s41467-026-70570-5.
ZHANG M H, STOYCHEV B K, ZHANG X Y, et al. Dry electrode architecture design to push energy density limits at the cell level[J]. Nature Energy, 2026, 11(3): 490-502. DOI:10.1038/s41560-026-01981-3.
BHADRA A, BRUNISHOLZ M, RAWAL A, et al. Mitigating electrochemical isolation in Ni-rich layered cathodes for durable solid-state batteries[J]. Advanced Science, 2026, 13(19): e18327. DOI:10.1002/advs.202518327.
YU Z K, GAN C J, SONG S Y, et al. Dendrite suppression in garnet electrolytes via thermally induced compressive stress[J ] . Joule, 2026, 10(1): 102232. DOI:10.1016/j.joule.2025.102232.
JEONG S, KIM C, AVVARU V S, et al. Self-healing lithium dendrites through spontaneous passivating layer formation for stable solid-state lithium-metal batteries[J]. ACS Nano, 2026, 20(12): 10198-10209. DOI:10.1021/acsnano.6c01373.
PARK Y J, KIM K T, JUN S, et al. Multi-faceted binder enhancement via slurry-applicable thiol-ene click chemistry for low-pressure-operable all-solid-st ate batteries[J ] . Advanced Functional Materials, 2026, 36(15): e16017. DOI:10.1002/adfm. 202516017.
WU D X, ZHANG Z Q, WANG L T, et al. Self-adaptive interfacial glue for low-pressure sulfide-based all-solid-state lithium metal batteries[J]. Energy & Environmental Science, 2026, 19(5): 1630-1641.
OHNO T, UGATA Y, YABUUCHI N. Design strategy for sheet-type composite electrodes in all-solid-state batteries operable under minimal stack pressure enabled by cold isostatic pressing[J]. ChemElectroChem, 2026, 13(6): e202500463. DOI:10.1002/celc. 202500463.
NAZMUTDINOVA E, NUGRAHA I M, OLCHOWKA J, et al. Enhancing ion-electron transport in positive electrode of solid-state lithium metal batteries with multifunctional catholyte made of polymer mixed ionic-electronic conductor PEDOT: PSSTFSI and Li 3 InCl 6 [J ] . Advanced Energy Materials, 2026, 16(14): e06757. DOI:10.1002/aenm.202506757.
LEE J, MOON H, LEE J, et al. Halogen-programmed Li 3 PO 4 coating for self-adaptive and durable interfaces in sulfide-based all-solid-state batteries[J ] . Chemical Engineering Journal, 2026, 530: 173574. DOI:10.1016/j.cej.2026.173574.
CRONK A, WANG X W, OH J A S, et al. A highly utilized and practical lithium-sulfur positive electrode enabled in all-solid-state batteries[J]. Nature Communications, 2026, 17: 3298. DOI:10. 1038/s41467-026-69750-0.
GU Z C, WEI S F, ZHANG X, et al. "Active material-free" design to overcome mass-transport limitations for high-energy-density all-solid-state Li-S batteries[J]. Joule, 2026, 10(2): 102239. DOI:10.1016/j.joule.2025.102239.
HONG S, CAO Y, QI J S, et al. High-valence-cation-induced lattice expansion for activating Li 2 S cathode in all-solid-state lithium-sulfur batteries[J ] . Advanced Materials, 2026, 38(15): e72513. DOI:10.1002/adma.72513.
JIANG M Y, SHI J W, WANG J J, et al. Optimizing f-d hybridization descriptor in rare-earth oxides for efficient sulfur catalysis in all solid-state lithium-sulfur batteries[J]. Advanced Materials, 2026, 38(14): e20011. DOI:10.1002/adma.202520011.
CHEN L, GUO J, WU W W, et al. Li 2 S anti-passivation deposition guided by electrochemically self-generated thiophosphate molecular mediators for lithium-sulfur batteries[J ] . Advanced Materials, 2026, 38(12): e19401. DOI:10.1002/adma.202519401.
AN Y H, KIM K, LEE Y J, et al. Binding properties of sulfur to enable solvent-free fabrication of high-performance polymer-free sulfur-carbon positive electrodes[J]. Nature Communications, 2026, 17: 2360. DOI:10.1038/s41467-026-69097-6.
WANG B, GUO B N, MAMOOR M, et al. Constructing wide-temperature-range Li-S batteries through synergistic boride spin-polarization coupling regulation and magnetohydrodynamic effects[J]. Angewandte Chemie International Edition, 2026, 65(12): e19187. DOI:10.1002/anie.202519187.
LYU H, GAO X, MICHALEK L, et al. Stabilizing all-solid-state Li-S batteries by a polysulfide-repelling and anode-protecting self-segregated trilayer polymer electrolyte[J]. Journal of the American Chemical Society, 2026, 148(5): 5275-5286. DOI:10. 1021/jacs.5c18042.
PENG L K, GENG C N, HE Y Q, et al. Chemo-electrochemical tandem catalysis unlocking sulfur reaction in practical lithium-sulfur batteries[J]. Advanced Materials, 2026, 38(11): e21611. DOI:10.1002/adma.202521611.
LIU H Y, WANG H, GAO P, et al. Combating phase segregation in earth-abundant pyrite cathodes for high-energy-density lithium-metal batteries[J]. Journal of the American Chemical Society, 2026, 148(8): 8634-8642. DOI:10.1021/jacs.5c20477.
LUO X T, CHEN Z Z, QIU X Q, et al. Structure and interfacial-stable binder engineering enables high-rate capability of NCM811 cathodes at 4.6 V[J]. Advanced Energy Materials, 2026, e70842. DOI:10.1002/aenm.70842.
LEE J, KIM J, JANG W, et al. A strategic tuning of interfacial Li+ solvation with ultrathin polymer layers for anode-free lithium metal batteries[J]. Joule, 2026, 10(1): 102226. DOI:10.1016/j.joule.2025.102226.
KIM D, HONG J. Dynamic polarization behavior in a commercial-scale pouch-type lithium-ion battery examined by a three-dimensional electrochemical-thermal modeling framework[J]. Journal of Power Sources, 2026, 668: 239358. DOI:10.1016/j.jpowsour.2026.239358.
ŠEDAJOVÁ V, HORWITZ G, HAN J, et al. Interparticle communication and lithium dynamics in faceted nickel-rich NMC cathodes[J]. Journal of the American Chemical Society, 2026, 148(4): 4097-4109. DOI:10.1021/jacs.5c15171.
BARAI P, LIU S Z, GARCIA J C, et al. Substitution-mediated calcination of nickel-based cathodes: Decoupling lithiation and crystallization[J]. Journal of the American Chemical Society, 2026, 148(5): 4999-5011. DOI:10.1021/jacs.5c14714.
WANG J, HUANG J H, HUANG W Y, et al. Understanding the performance gap between polycrystalline and single-crystal nickel-rich layered oxide cathodes[J]. Journal of the American Chemical Society, 2026, 148(9): 9421-9432. DOI:10.1021/jacs. 5c18922.
FONG R, TREVINO LARA P, MUBARAK N, et al. Suppressing oxygen-loss-driven lattice expansion cascades in disordered rock-salt Li-ion cathodes via electrolyte engineering[J ] . Chemistry of Materials, 2026, 38(7): 3596-3610. DOI:10.1021/acs.chemmater. 6c00046.
YANG W, LUO Z M, DENG J, et al. Solvent selection for high-safety lithium-ion batteries: Unravelling the divergent mechanisms of EC/EMC and EC/DMC governing thermal runaway hazard severity[J]. Chemical Engineering Journal, 2026, 533: 174897. DOI:10.1016/j.cej.2026.174897.
LIU G X, LI Y, TIAN J X, et al. Elucidating dynamic evolution of the sulfur cathode in sulfide-based all-solid-state lithium-sulfur batteries[J]. Nano Letters, 2026, 26(10): 3542-3549. DOI:10. 1021/acs.nanolett.6c00075.
WANG N, WANG S, ZHENG Y, et al. Revealing key structures for reversible sulfur redox in amorphous polymeric sulfur[J]. Nature Materials, 2026, 25(5): 791-798. DOI:10.1038/s41563-026-02484-y.
WU Y H, ZHANG S, SUN Y L, et al. Electrochemical initiation and chemical reaction cascades in dual-stage thermal runaway in sulfide-based all-solid-state batteries[J]. Nature Communications, 2026, 17: 2928. DOI:10.1038/s41467-026-69472-3.
LIANG S Z, LU P S, HU H X, et al. State-of-charge dependent aging mechanism of halide-based composite cathodes for all-solid-state batteries[J]. Advanced Energy Materials, 2026, 16(9): e05745. DOI:10.1002/aenm.202505745.
BATTISTELLA B, HOFFMANN V, AGUDO JÁCOME L, et al. Depth-resolved lithium isotope fractionation as a diagnostic of interphase evolution and degradation in lithium-ion batteries[J]. ACS Energy Letters, 2026, 11(3): 2851-2857. DOI:10.1021/acsenergylett.5c04137.
HÜGER E, STAHN J, SCHMIDT H. Identification of lithiation mechanisms in Li-ion batteries: Multilayer electrodes and neutron reflectometry[J]. ACS Energy Letters, 2026, 11(2): 2275-2281. DOI:10.1021/acsenergylett.5c04221.
WANG W N, LI Z Y, WANG J, et al. Visualization and quantification of lattice strain in battery cathode particles through electron backscatter diffraction imaging[J]. Nature Communications, 2026, 17: 1421. DOI:10.1038/s41467-025-68166-6.
VESTIN P, SCHLAUTMANN E, SANS-PLANELL O, et al. 4D multimodal neutron and X-ray tomography of lithium transport in all-solid-state batteries using Li-7 contrast enhancement[J]. Cell Reports Physical Science, 2026, 7(2): 103136. DOI:10.1016/j.xcrp.2026.103136.
S MENON A, ORLANDI F, MANUEL P, et al. Advancing battery diagnostics through operando Neutron diffraction of unmodified nondeuterated Li-ion single-layer pouch cells[J ] . Chemistry of Materials, 2026, 38(9): 4517-4527. DOI:10.1021/acs.chemmater. 5c03201.
CHU P J, HUANG J Y, LIU Y S, et al. Diffraction-enabled operando nanoscale tracking of Li-ion dynamics of solid electrolyte and inhomogeneous diffusion in composite cathode[J]. Angewandte Chemie International Edition, 2026, 65(10): e20281. DOI:10.1002/anie.202520281.
AI Q, ZHANG B Y, LIU X, et al. Strong and brittle lithium dendrites[J]. Science, 2026, 391(6790): 1125-1129. DOI:10.1126/science.adu9988.
LI Z, WU D R, JI S S M, et al. Texture evolution of plated lithium in anode-free solid-state batteries[J]. ACS Energy Letters, 2026, 11(2): 1705-1713. DOI:10.1021/acsenergylett.5c03205.
HUANG K, HAN Y, XIE Z, et al. Ultrasonic study of lithium-ion battery degradation induced by transition metal dissolution[J]. ACS Energy Letters, 2026, 11(4): 3572-3580. DOI:10.1021/acsenergylett.6c00411.
DONAIS M, BUTLER E J, CONDON A, et al. Electrolyte motion induced salt inhomogeneity in Si-containing cylindrical cells-a case study[J]. Journal of the Electrochemical Society, 2026, 173(5): 050519. DOI:10.1149/1945-7111/ae4b6e.
FURTMAIR M, WOLTERS A, ŠIMIĆ S, et al. The effect of fluorine-containing SEI on aging at the anode-separator interface in lithium-ion batteries[J]. Journal of Power Sources, 2026, 673: 239675. DOI:10.1016/j.jpowsour.2026.239675.
GUO Z Z, DOLOCAN A, MANTHIRAM A. Impact of anode to cathode crossover in lithium-metal batteries with high-nickel cathodes[J]. Advanced Materials, 2026, 38(13): e18490. DOI:10. 1002/adma.202518490.
LIU B, ZHOU J, YANG L Y, et al. Impacts of pretreatment routes on spent lithium-ion batteries recycling[J]. Nature Sustainability, 2026, 9(4): 626-638. DOI:10.1038/s41893-026-01767-1.
WANG Y, ZHENG X H, LV W G, et al. A three-in-one strategy for lithium recovery and upcycling of spent cathode materials[J]. Nature Communications, 2026, 17: 1153. DOI:10.1038/s41467-025-67912-0.
HUANG S Q, HUANG S P, LI M X, et al. Self-driven recycling of spent Li-ion battery materials with electricity generation[J]. Nature Communications, 2026, 17: 2996. DOI:10.1038/s41467-026-69868-1.
ZHONG W X, GU X S, FENG X Z, et al. Maximizing energy utilization and lithium leaching efficiency via sequential electrochemical dual-oxidation and soaking-relaxation[J ] . Nature Communications, 2026, 17: 2050. DOI:10.1038/s41467-026-69834-x.
WU S X, HUANG C X, SHEN W B, et al. A water-soluble binder for recyclable lithium-ion batteries[J]. Nature Sustainability, 2026, 9(4): 575-584. DOI:10.1038/s41893-026-01773-3.
TU C H, TSENG C E, LAI W C, et al. Quantifying lattice-crack-electrochemical transport coupling for durable, fast-charging battery cathodes[J]. Advanced Energy Materials, 2026, 16(13): e06427. DOI:10.1002/aenm.202506427.
GÜMRÜKÇÜOĞLU A E, BURRIDGE J, O'REGAN K, et al. A fast and accurate method for inferring solid-state diffusivity in lithium-ion battery active materials[J]. Journal of Energy Storage, 2026, 153: 120831. DOI:10.1016/j.est.2026.120831.
ZHANG J W, ZHANG Y F, YI B Z, et al. Discovery Learning predicts battery cycle life from minimal experiments[J]. Nature, 2026, 650(8100): 110-115. DOI:10.1038/s41586-025-09951-7.
ZHAO Q H, LI Y H, KONG L Y, et al. Multifeature battery state-of-health linear estimation based on low-cost pretrained inference LLM[J]. IEEE Transactions on Transportation Electrification, 2026, 12(1): 902-912. DOI:10.1109/TTE.2025.3623295.
BANERJEE S, VISHNUGOPI B S, SINGLA A, et al. Void formation and evolution dynamics for lithium metal and solid electrolyte interfaces[J]. ACS Applied Materials & Interfaces, 2026, 18(5): 7981-7991. DOI:10.1021/acsami.5c14957.
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