Synergistic interface regulation for achieving fast kinetics and highly reversible zinc metal anodes DOI
Pengtao Wang, Kaifeng Yu, Haonan Wang

et al.

Journal of Colloid and Interface Science, Journal Year: 2024, Volume and Issue: 683, P. 688 - 698

Published: Dec. 30, 2024

Language: Английский

Tunable N-doped Carbon Dots/SnO2 Interface as a Stable Artificial Solid Electrolyte Interphase for High-Performance Aqueous Zinc-Ion Batteries DOI
Mohan Gopalakrishnan,

Myo Thandar Hlaing,

Thirumoorthy Kulandaivel

et al.

Journal of Alloys and Compounds, Journal Year: 2025, Volume and Issue: 1013, P. 178521 - 178521

Published: Jan. 1, 2025

Language: Английский

Citations

2

Comprehensive crystallographic engineering for high-efficiency and durable zinc metal anodes DOI

Zhongcheng Peng,

Xiran Shen,

Binghui Li

et al.

Progress in Materials Science, Journal Year: 2025, Volume and Issue: unknown, P. 101453 - 101453

Published: Feb. 1, 2025

Language: Английский

Citations

2

Spatial and anchoring effects of zirconia-doped 3D scaffolds for stable zinc anodes DOI

Jinqiu Ye,

Tiancheng Ge, Xin Qu

et al.

Chemical Engineering Journal, Journal Year: 2025, Volume and Issue: 505, P. 159397 - 159397

Published: Jan. 10, 2025

Language: Английский

Citations

1

Nano‐Zinc Sulfide Modified 3D Reconstructed Zinc Anode with Induced Deposition Effect Assists Long‐Cycle Stable Aqueous Zinc Ion Battery DOI Creative Commons
Dongfang Guo, Fengyu Li, Bin Zhang

et al.

Advanced Science, Journal Year: 2025, Volume and Issue: unknown

Published: Jan. 21, 2025

Abstract Aqueous zinc ion batteries are often adversely affected by the poor stability of metal anodes. Persistent water‐induced side reactions and uncontrolled dendrite growth have seriously damaged long‐term service life aqueous batteries. In this paper, it is reported that a sulfide with optimized electron arrangement on surface anode used to modify achieve cycle anode. The effective active sites first significantly improved simple ultrasound‐assisted etching strategy, then in situ interface phase further guides deposition behavior protective layer well regulates interfacial electric field migration Zn 2+ , thereby promoting homogenization flux dendrite‐free deposition. addition, full cell assembled based ZnS@3D‐Zn achieves better output performance cycles. summary, work sheds light importance reasonable modification for development stable chemistry, which opens up new path zinc‐based

Language: Английский

Citations

1

Robust diphasic coupling layer with ferroelectric switching response for durable and dendrite-free zinc anodes DOI
Yuqing Luo, Jiugang Hu,

Shan Cai

et al.

Chemical Engineering Journal, Journal Year: 2025, Volume and Issue: unknown, P. 160250 - 160250

Published: Feb. 1, 2025

Language: Английский

Citations

1

Sandwich‐Structured ZnO/MXene Heterojunction for Sensitive and Stable Room‐Temperature Ammonia Sensing DOI Open Access
Dongli Li, Zhang Zhan, Menggai Jiao

et al.

Small, Journal Year: 2025, Volume and Issue: 21(11)

Published: Feb. 16, 2025

Abstract 2D metal carbides/nitrides (MXenes) have attracted considerable interest in NH 3 sensing due to their high electrical conductivity and abundant terminal groups. However, the strong interlayer interactions between MXene nanosheets result challenges related recovery rapid response decay MXene‐based sensors. Here, a one‐step hydrothermal strategy is developed that anchors Zn atoms grows ZnO polycrystals on Ti vacancies of C 2 T x layers, forming sandwich‐structured ZnO/Ti heterojunction. At room temperature, sensitivity remarkable 45‐fold higher than , with low detection limit 138 ppb time 39 s. Furthermore, heterojunction exhibits exceptional long‐term stability, maintaining consistent over 21 days. The results confirm situ intercalation effectively solves problem substrates by completely exfoliating nanosheets. Meanwhile, room‐temperature performance speed enhanced electron conduction. This straightforward effective route for exfoliation layers promises expanded use material heterojunctions applications.

Language: Английский

Citations

1

Biomimetic Inorganic–Organic Protective Layer for Highly Stable and Reversible Zn Anodes DOI Creative Commons

Chengwu Yang,

Pattaraporn Woottapanit,

Sining Geng

et al.

ACS Energy Letters, Journal Year: 2024, Volume and Issue: unknown, P. 337 - 344

Published: Dec. 20, 2024

Uncontrollable dendrite growth and severe parasitic side reactions on Zn electrodes pose formidable challenges for the application of aqueous Zn-ion batteries. Herein, we engineered a biomimetic inorganic–organic protective layer composed alginic acid lithium magnesium silicate to enhance stability reversibility electrode. This not only diminishes free water concentration near surface but also creates negatively charged ion microchannels transport ions modulate solvation structure. Moreover, robust Mg-SiO2 interphase with high Young's modulus strong zincophilicity can be formed between electrode layer, facilitating uniform deposition along Zn(002) planes. Consequently, this allows achieve impressive cycling lifespan 5500 h at 1 mA cm–2/1 mAh cm–2 Coulombic efficiency 99.5% delivers remarkable cyclability up 8000 cycles in Zn||V2O5 full cells.

Language: Английский

Citations

7

Reconstructing Electric Double Layer with β‐diketone Additive for Highly Invertible Zn Anode DOI Open Access

Boyong Wu,

Tong Yan, Sucheng Liu

et al.

Advanced Functional Materials, Journal Year: 2025, Volume and Issue: unknown

Published: Jan. 16, 2025

Abstract Aqueous Zn ion batteries (AZIBs) have emerged as a promising option for energy storage on large scale. However, the unsteady electric double layer (EDL) that causes continuous H 2 O and SO 4 2− induced side reactions byproducts, results in unstable anode electrolyte interphase (AEI) restricts practical application of AZIBs. A novel EDL reconstruction strategy is proposed by prior adsorption process organic molecules, achieving steady AEI uniform deposition. Experimental theoretical calculations illustrate zinc acetylacetonate (Zn(C 5 7 ) , Zn(acac) conceives pair polar groups (─C═O) contributes to stability AEI. As result, with additive (ZnSO + ZAH) realizes Zn//Zn cells highly invertible plating/stripping performance over 2400 h an average Coulombic efficiency 99.55%. Moreover, Zn//NH V 10 pouch ZAH maintain impressive capacity retention 55.81% during 3000 cycles. These spotlight enormous potential additive, providing feasibility reversible anodes.

Language: Английский

Citations

0

Zinc‐Seeded PEDOT:PSS Aerogel Host as Highly Reversible Dendrite‐Free Zinc Metal Anode DOI

Zhanrui Zhang,

Yao Wang, Jie Sun

et al.

Small, Journal Year: 2025, Volume and Issue: unknown

Published: Feb. 26, 2025

Abstract The parasitic reactions and rampant dendrite growth on the Zn anode side pose significant obstacles to future applications of aqueous zinc ion batteries. Herein, a lightweight host is reported by introducing nanosized metallic into poly(3,4‐ethylenedioxythiophene):polystyrene sulfonate (PEDOT:PSS) (P‐S) aerogel (Zn/P‐S). ‒SO 3 H groups interact with 2+ guild their migrations along PSS chains, while offer additional nucleation sites homogenize electrical concentration. Owing these synergistic effects, uniform dense deposition (002) plane aligned parallel P‐S substrate achieved, even at high plating capacity 20 mAh cm −2 . Moreover, deposited over Zn/P‐S (Zn@Zn/P‐S) exhibits highly reversible plating/stripping behavior Coulombic efficiency maintained 99% 700 cycles. Consequently, Zn@Zn/P‐S‐based symmetric Zn||Zn cell can work stably 500 h 0.5 ‒2 100 4 depth discharge 40%. A Zn@Zn/P‐S||NaV O 8 full battery presents rate capability 82.2% retention after 1000 cycles 2 g ‒1 This strategy provides novel approach for designing polymer‐based anodes corrosion‐resistant dendrite‐free striping/plating behaviors.

Language: Английский

Citations

0

Building Powerful Zinc‐Ion Hybrid Capacitors by an Energy Drink‐Inspired Strategy DOI Open Access

Weihao Song,

Bo Jiang, Yili Wang

et al.

Small, Journal Year: 2025, Volume and Issue: unknown

Published: March 3, 2025

Abstract Numerous modification strategies have been proposed to enhance the performance of Zn anode and carbon cathode in aqueous zinc‐ion hybrid capacitors (ZIHCs). However, one efficient strategy modify both is still lacking. Herein, taurine (Tau), key ingredient energy drinks, used as electrolyte additive precursor for ZIHCs simultaneously. As additive, Tau achieves preferential growth (002) plane by preferentially adsorbing on other crystal planes. Moreover, accelerates 2+ transference kinetics regulating solvation structure constructs a functional solid interphase layer, enabling suppressed hydrogen evolution, inhibited corrosion reaction, dendrite‐free deposition. The Zn//Zn cells using Tau‐modified·ZnSO 4 (Tau‐ZSO) can stably work 1000 h at 76.95% depth discharge room temperature 5200 −10 °C. Meanwhile, taurine‐derived (Tau‐C) exhibits N, S heteroatom doping, hierarchical porous structure, high specific surface area, which contributes capacity. By Tau‐C cathode, limited (10 µm), Tau‐ZSO electrolyte, assembled demonstrate reduced polarization capacities (119.4 mA g −1 under 3 A 80.0 1 °C) with density 101.1 Wh kg long lifetime (operating over 2000 cycles).

Language: Английский

Citations

0