Breaking Anionic Solvation Barrier for Safe and Durable Potassium‐ion Batteries Under Ultrahigh‐Voltage Operation DOI

Yong‐Li Heng,

Zhen‐Yi Gu,

Han‐Hao Liu

и другие.

Angewandte Chemie, Год журнала: 2025, Номер 137(14)

Опубликована: Апрель 1, 2025

Abstract Ultrahigh‐voltage potassium‐ion batteries (PIBs) with cost competitiveness represent a viable route towards high energy battery systems. Nevertheless, rapid capacity decay poor Coulombic efficiencies remains intractable, mainly attributed to interfacial instability from aggressive potassium metal anodes and cathodes. Additionally, reactivity of K flammable electrolytes pose severe safety hazards. Herein, weakly solvating fluorinated electrolyte intrinsically nonflammable feature is successfully developed enable an ultrahigh‐voltage (up 5.5 V) operation. Through breaking the anionic solvation barrier, synergistic modulation can be achieved by formation robust anion‐derived inorganic‐rich electrode‐electrolyte interfaces on both cathode anode. As proof concept, representative KVPO 4 F sustain 1600 cycles 84.4 % retention at cutoff voltage 4.95 V. Meanwhile, plating/stripping process in our designed also demonstrates optimized electrochemical reversibility stability effectively inhibited dendrites. These findings underscore critical impact anion‐dominated configuration properties. This work provides new insights into rational design safe for advanced PIBs.

Язык: Английский

Fluorine Chemistry in Rechargeable Batteries: Challenges, Progress, and Perspectives DOI
Xiaojing Yao, Xu Yang, Yuefeng Meng

и другие.

Chemical Reviews, Год журнала: 2024, Номер 124(6), С. 3494 - 3589

Опубликована: Март 13, 2024

The renewable energy industry demands rechargeable batteries that can be manufactured at low cost using abundant resources while offering high density, good safety, wide operating temperature windows, and long lifespans. Utilizing fluorine chemistry to redesign battery configurations/components is considered a critical strategy fulfill these requirements due the natural abundance, robust bond strength, extraordinary electronegativity of free fluoride formation, which enables fluorinated components with effectiveness, nonflammability, intrinsic stability. In particular, materials electrode|electrolyte interphases have been demonstrated significantly affect reaction reversibility/kinetics, tolerance batteries. However, underlining principles governing material design mechanistic insights atomic level largely overlooked. This review covers range topics from exploration fluorine-containing electrodes, electrolyte constituents, other for metal-ion shuttle constructing fluoride-ion batteries, dual-ion new chemistries. doing so, this aims provide comprehensive understanding structure–property interactions, features interphases, cutting-edge techniques elucidating role in Further, we present current challenges promising strategies employing chemistry, aiming advance electrochemical performance, operation, safety attributes

Язык: Английский

Процитировано

73

Anion Receptor Weakens ClO4 Solvation for High‐Temperature Sodium‐Ion Batteries DOI
Xunzhu Zhou, Xiaohong Chen, Zhuo Yang

и другие.

Advanced Functional Materials, Год журнала: 2023, Номер 34(5)

Опубликована: Май 17, 2023

Abstract Sodium‐ion batteries (SIBs) with wide operating temperature are regarded as promising candidates for large‐scale energy storage systems. However, SIBs under elevated aggravate the electrolyte decomposition unstable cathode‐electrolyte interphase (CEI), causing a rapid capacity degradation. Herein, anion receptor tris(pentafluorophenyl)borane (TPFPB) is selected additive to construct robust NaF‐rich CEI. The strong interactions between and TPFPB via electron‐deficient boron atoms weaken ClO 4 − solvation promote coordination capability solvents Na + cations, demonstrating greatly improved oxidative stability. 3 V 2 (PO ) cathode in TPFPB‐containing delivers long‐term stability retention of 86.9% after 100 cycles at high cut‐off voltage 4.2 (vs. /Na) 60 °C. Besides, also works well enhanced performance over range from −30 This study proposes prospective method by manipulating chemistry constructing high‐temperature rechargeable SIBs.

Язык: Английский

Процитировано

56

Additive‐guided Solvation‐regulated Flame‐retardant Electrolyte Enables High‐voltage Lithium Metal Batteries with Robust Electrode Electrolyte Interphases DOI
Jiandong Liu, Xin Li, Junda Huang

и другие.

Advanced Functional Materials, Год журнала: 2024, Номер 34(16)

Опубликована: Янв. 2, 2024

Abstract Widening the voltage window of nickel‐rich layered oxide cathode‐based lithium metal batteries (LMBs) can effectively improve energy density rechargeable batteries. However, serious safety issues associated with high reactivity between LiNi 0.8 Co 0.1 Mn O 2 (NCM811) and electrolyte at cut‐off remains challenging. Herein, a flame‐retardant ability to form robust armor‐like electrode interphase (EEI) LiF Li x B y z compounds for stabilizing Li||NCM811 is proposed. Such exhibits thermal stability effect ensuring battery voltage. The EEI protect both NCM811 (Li) improving cycling performance. As result, capacity retention rate cathode such reached 68% after 150 cycles 4.6 V. This work provides an effective reference reasonable design high‐voltage, electrolytes LMBs.

Язык: Английский

Процитировано

40

Carbonate Ester-Based Electrolyte Enabling Rechargeable Zn Battery to Achieve High Voltage and High Zn Utilization DOI
Kang Zhou, Gaopan Liu,

Xiaomeng Yu

и другие.

Journal of the American Chemical Society, Год журнала: 2024, Номер 146(13), С. 9455 - 9464

Опубликована: Март 21, 2024

Owing to the high H

Язык: Английский

Процитировано

26

570 Wh kg⁻1‐Grade Lithium Metal Pouch Cell with 4.9V Highly Li+ Conductive Armor‐Like Cathode Electrolyte Interphase via Partially Fluorinated Electrolyte Engineering DOI
Xiangxiang Liu,

Yong Li,

Jiandong Liu

и другие.

Advanced Materials, Год журнала: 2024, Номер 36(24)

Опубликована: Март 4, 2024

Abstract Lithium‐rich manganese‐based layered oxides (LRMOs) are promisingly used in high‐energy lithium metal pouch cells due to high specific capacity/working voltage. However, the interfacial stability of LRMOs remains challenging. To address this question, a novel armor‐like cathode electrolyte interphase (CEI) model is proposed for stabilizing LRMO at 4.9 V by exploring partially fluorinated formulation. The fluoroethylene carbonate (FEC) and tris (trimethylsilyl) borate (TMSB) formulated largely contribute formation CEI with LiB x O y Li PO F z outer layer LiF‐ 3 4 ‐rich inner part. Such effectively inhibits lattice oxygen loss facilitates + migration smoothly guaranteeing deliver superior cycling rate performance. As expected, Li||LRMO batteries such achieve capacity retention 85.7% average Coulomb efficiency (CE) 99.64% after 300 cycles 4.8 V/0.5 C, even obtain 87.4% 100 higher cut‐off voltage V. Meanwhile, 9 Ah‐class show over thirty‐eight stable life energy density 576 Wh kg −1

Язык: Английский

Процитировано

21

Flame‐Retardant, Self‐Purging, High‐Voltage Electrolyte for Safe and Long‐Cycling Sodium Metal Batteries DOI

Chunlei Zhu,

Daxiong Wu, Chuan Wang

и другие.

Advanced Functional Materials, Год журнала: 2024, Номер unknown

Опубликована: Июнь 4, 2024

Abstract Sodium metal batteries (SMBs) remain greatly challenging in safety and stability. Herein, a flame‐retardant s designed, self‐purging high‐voltage electrolyte is designed to stabilize SMBs with the use of ethoxy (pentafluoro) cyclotriphosphazene (PFPN) as additive. PFPN can participate shell structure solvation through stronger van der Waals force form Na 3 N, NaF‐rich solid/cathode interphase (SEI/CEI) electronic insulation fast ion transport. Moreover, harmful impurity (PF 5 ) also be scavenged by avoid HF production, which helps electrode interface. Additionally, combustion radicals (H, HO) cleared between radical (RPO) formed breaking for flame‐retardation purpose. As expected, Na||Na V 2 (PO 4 O F battery modified deliver reservation 92.4%, CE 99.71% after 2000 cycles, simultaneously possess excellent high‐rate charging/slow discharging performance.

Язык: Английский

Процитировано

21

Dual LiF/LiCl‐Rich Solid Electrolyte Interphases with Robust and Li+‐conductive Characteristics for 4.8 V Lithium Metal Batteries DOI
Huaping Wang, Jiandong Liu,

Gaoxue Jiang

и другие.

Advanced Energy Materials, Год журнала: 2024, Номер 14(21)

Опубликована: Фев. 29, 2024

Abstract Lithium metal batteries, which are constructed by lithium‐rich manganese‐based oxide (LRMO) cathode and Li anode, have attracted intensive attention due to its high energy density. However, the instability of both anode limits practical application undesirable electrolyte decomposition at voltage. To address these issues, an engineering strategy is proposed for constructing robust, highly + ‐conductive solid interphases on with chlorobenzene as additive. Due mechanical stability interface dynamics LiCl‐endorsed, LiF‐rich interphase, transition ion dissolution effectively inhibited. Meanwhile, robust LiF/LiCl‐rich interphase can repress overgrowth dendrites. The Li||LRMO battery optimized 2.0 wt.% demonstrates a high‐capacity retention 86.1% after 200 cycles 0.5 C.

Язык: Английский

Процитировано

18

Tailoring the Electrode‐Electrolyte Interface for Reliable Operation of All‐Climate 4.8 V Li||NCM811 Batteries DOI

Wujie Yang,

Zhenjie Zhang, Xinyi Sun

и другие.

Angewandte Chemie International Edition, Год журнала: 2024, Номер 63(44)

Опубликована: Авг. 6, 2024

Abstract Combining high‐voltage nickel‐rich cathodes with lithium metal anodes is among the most promising approaches for achieving high‐energy‐density batteries. However, current electrolytes fail to simultaneously satisfy compatibility requirements anode and tolerance ultra‐high voltage NCM811 cathode. Here, we have designed an ultra‐oxidation‐resistant electrolyte by meticulously adjusting composition of fluorinated carbonates. Our study reveals that a solid‐electrolyte interphase (SEI) rich in LiF Li 2 O constructed on through synergistic decomposition solvents PF 6 − anion, facilitating smooth deposition. The superior oxidation resistance our enables Li||NCM811 cell deliver capacity retention 80 % after 300 cycles at ultrahigh cut–off 4.8 V. Additionally, pioneering V‐class pouch energy density 462.2 Wh kg −1 stably 110 under harsh conditions high cathode loading (30 mg cm −2 ), low N/P ratio (1.18), lean (2.3 g Ah ).

Язык: Английский

Процитировано

18

Mechanically and Thermally Stable Cathode Electrolyte Interphase Enables High‐temperature, High‐voltage Li||LiCoO2 Batteries DOI
Daxiong Wu,

Chunlei Zhu,

Huaping Wang

и другие.

Angewandte Chemie International Edition, Год журнала: 2023, Номер 63(7)

Опубликована: Дек. 12, 2023

Abstract The development of high‐energy‐density Li||LiCoO 2 batteries is severely limited by the instability cathode electrolyte interphase (CEI) at high voltage and temperature. Here we propose a mechanically thermally stable CEI designing for achieving exceptional performance 4.6 V 70 °C. 2,4,6‐tris(3,4,5‐trifluorophenyl)boroxin (TTFPB) as additive could preferentially enter into first shell structure PF 6 − solvation be decomposed on LiCoO surface low oxidation potential to generate LiB x O y ‐rich/LiF‐rich CEI. layer effectively maintained integrity provided excellent mechanical thermal stability while abundant LiF in further improved homogeneity Such drastically alleviated crack regeneration irreversible phase transformation cathode. As expected, with tailored achieved 91.9 % 74.0 capacity retention after 200 150 cycles 4.7 V, respectively. Moreover, such also delivered an unprecedented high‐temperature 73.6 100 °C V.

Язык: Английский

Процитировано

42

Porous and chemically robust MIL-100(V) MOF as an efficient cathode material for zinc‑ion batteries DOI
Supriya Mondal, Prakas Samanta, Rupam Sahoo

и другие.

Chemical Engineering Journal, Год журнала: 2023, Номер 470, С. 144340 - 144340

Опубликована: Июнь 25, 2023

Язык: Английский

Процитировано

39