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全固态无负极锂金属电池纳米化复合集流体构筑 被引量:1
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作者 刘泽宇 黄文泽 +6 位作者 肖阳 张俊东 孔伟进 武鹏 赵辰孜 陈爱兵 张强 《物理化学学报》 SCIE CAS CSCD 北大核心 2024年第3期60-68,共9页
全固态无负极锂金属电池(AFSSLB)是一种通过初次充电形成金属锂负极的新型锂电池,它的负极与正极容量比为1,能使任意锂化正极系统达到最大能量密度。无机固态电解质的引入使无负极锂金属体系兼具高安全性。然而,电池循环过程中的锂离子... 全固态无负极锂金属电池(AFSSLB)是一种通过初次充电形成金属锂负极的新型锂电池,它的负极与正极容量比为1,能使任意锂化正极系统达到最大能量密度。无机固态电解质的引入使无负极锂金属体系兼具高安全性。然而,电池循环过程中的锂离子通量不均导致的界面接触损失和锂枝晶生长会不断加剧,从而造成电池循环容量迅速衰减。本文构筑了纳米化的银碳复合集流体,显著增强了全固态无负极锂金属电池中集流体-电解质界面的性能。使用该集流体的固态电池循环过程中接触良好,界面阻抗为~10Ω·cm^(-2)。从而实现了超过7.0mAh·cm^(-2)锂金属的均匀稳定沉积,并在0.25mA·cm^(-2)的电流条件下实现循环200次以上。 展开更多
关键词 全固态电池 无负极锂金属二次电池 纳米集流体 界面接触 锂金属电池
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钨掺杂镍铁水滑石高效电催化析氧反应 被引量:1
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作者 段欣漩 Marshet Getaye Sendeku +6 位作者 张道明 周道金 徐立军 高学庆 陈爱兵 邝允 孙晓明 《物理化学学报》 SCIE CAS CSCD 北大核心 2024年第1期44-45,共2页
电解水对制备可持续和清洁的氢气能源至关重要。电解水的阳极析氧反应设计复杂的4-电子转移过程,所需能耗较高,是电解水的速控步骤。催化剂对于析氧反应的进行具有重要作用。镍铁水滑石是最具潜力的碱性非贵金属析氧反应(OER)催化剂,但... 电解水对制备可持续和清洁的氢气能源至关重要。电解水的阳极析氧反应设计复杂的4-电子转移过程,所需能耗较高,是电解水的速控步骤。催化剂对于析氧反应的进行具有重要作用。镍铁水滑石是最具潜力的碱性非贵金属析氧反应(OER)催化剂,但是由于水滑石导电性差、活性位点暴露不充分、对反应中间体吸附较弱等问题,催化活性还需要进一步提高。如何提升催化活性已经被科学家们广泛关注,比如:制造缺陷、掺杂、将水滑石剥离为单层结构和组装为阵列结构等。在本论文中,通过简单的“一锅法”醇解合成了一系列不同量W掺杂NiFe-LDH的样品。XRD结果表明合成的NiFeW-LDH的衍射峰与完美NiFe-LDH标准卡片相同,没有其他的衍射峰,表明W没有单独成相,被成功掺杂进入NiFe-LDH。扫描电镜表明NiFeW-LDH为纳米片(尺寸约为~500 nm)组成的3d立体花状结构,且材料中Ni、Fe和W均匀分布。XPS表明材料中W的价态为6+,与未掺杂的NiFe-LDH相比,Fe向高价态移动,表面吸附的OH增多。在密度泛函理论(DFT)计算中,结果同样表明W6+掺杂有利于H2O和O*中间体的吸附,提高了Fe位点的活性。在1 mol∙L^(−1) KOH中,NiFeW-LDH达到10 mA·cm^(−2)所需过电位是199和237 mV,这比大多数的NiFe基粉末催化剂的性能好。综上,实验和计算表明W掺杂调控催化剂中Fe位点电子结构,优化对反应中间体的吸附,使催化剂具有更高活性。 展开更多
关键词 析氧反应 水滑石 钨掺杂 电子相互作用 电催化
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Next‑Generation Green Hydrogen: Progress and Perspective from Electricity, Catalyst to Electrolyte in Electrocatalytic Water Splitting
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作者 Xueqing Gao Yutong chen +5 位作者 Yujun Wang Luyao Zhao Xingyuan Zhao Juan Du Haixia Wu aibing chen 《Nano-Micro Letters》 SCIE EI CAS CSCD 2024年第11期274-322,共49页
Green hydrogen from electrolysis of water has attracted widespread attention as a renewable power source.Among several hydrogen production methods,it has become the most promising technology.However,there is no large-... Green hydrogen from electrolysis of water has attracted widespread attention as a renewable power source.Among several hydrogen production methods,it has become the most promising technology.However,there is no large-scale renewable hydrogen production system currently that can compete with conventional fossil fuel hydrogen production.Renewable energy electrocatalytic water splitting is an ideal production technology with environmental cleanliness protection and good hydrogen purity,which meet the requirements of future development.This review summarizes and introduces the current status of hydrogen production by water splitting from three aspects:electricity,catalyst and electrolyte.In particular,the present situation and the latest progress of the key sources of power,catalytic materials and electrolyzers for electrocatalytic water splitting are introduced.Finally,the problems of hydrogen generation from electrolytic water splitting and directions of next-generation green hydrogen in the future are discussed and outlooked.It is expected that this review will have an important impact on the field of hydrogen production from water. 展开更多
关键词 HYDROGEN ELECTROLYSIS Hydrogen production Renewable energy CATALYST
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柱状金属锂沉积物:电解液添加剂的影响 被引量:8
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作者 杨世杰 徐向群 +9 位作者 程新兵 王鑫萌 陈金秀 肖也 袁洪 刘鹤 陈爱兵 朱万诚 黄佳琦 张强 《物理化学学报》 SCIE CAS CSCD 北大核心 2021年第1期136-143,共8页
二次电池的能量密度已成为推动电动汽车和便携式电子产品技术向前发展的重要指标。使用石墨负极的锂离子电池正接近其理论能量密度的天花板,但仍难以满足高端储能设备的需求。金属锂负极因其极高的理论比容量和极低的电极电位,受到了广... 二次电池的能量密度已成为推动电动汽车和便携式电子产品技术向前发展的重要指标。使用石墨负极的锂离子电池正接近其理论能量密度的天花板,但仍难以满足高端储能设备的需求。金属锂负极因其极高的理论比容量和极低的电极电位,受到了广泛关注。然而,锂沉积过程中枝晶的生长会导致电池安全性差等问题。电解液对金属锂的沉积有着至关重要的影响。本文设计了一种独特的电解槽体系来进行柱状锂的沉积,研究了不同电解液体系(1mol·L^(-1)LiPF6-碳酸乙烯酯/碳酸二乙酯(EC/DEC,体积比为1:1)、1 mol·L^(-1) LiPF6-氟代碳酸乙烯酯(FEC,体积分数5%)-EC/DEC (体积比为1:1))对金属锂沉积的影响。对两种电解液中金属锂沉积物长径比的研究表明,电解液的组分可以显著地影响金属锂的沉积形貌,在加入氟代碳酸乙烯酯(FEC)添加剂之后,柱状锂的直径从0.3–0.6μm增加到0.7–1.3μm,长径比从12.5下降到5.6。长径比的降低有助于减小金属锂和电解液的反应面积,提高金属锂负极的利用率和循环寿命。通过考察循环后锂片的表面化学性质,发现FEC的分解增加了锂表面固态电解质界面层中氟化锂(LiF)组分的比例,提高了界面层中锂离子的扩散速率,减少了锂的成核位点,从而给予锂核更大的生长空间,降低了沉积出的柱状锂的长径比。 展开更多
关键词 金属锂电池 柱状锂 电解液 氟化锂 长径比
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Recent advances in spinel-type electrocatalysts for bifunctional oxygen reduction and oxygen evolution reactions 被引量:10
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作者 Xiao-Meng Liu Xiaoyang Cui +7 位作者 Kamran Dastafkan Hao-Fan Wang cheng Tang Chuan Zhao aibing chen Chuanxin He Minghan Han Qiang Zhang 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第2期290-302,I0010,共14页
The demand for efficient and environmentally-benign electrocatalysts that help availably harness the renewable energy resources is growing rapidly. In recent years, increasing insights into the design of water electro... The demand for efficient and environmentally-benign electrocatalysts that help availably harness the renewable energy resources is growing rapidly. In recent years, increasing insights into the design of water electrolysers, fuel cells, and metal–air batteries emerge in response to the need for developing sustainable energy carriers, in which the oxygen evolution reaction and the oxygen reduction reaction play key roles. However, both reactions suffer from sluggish kinetics that restricts the reactivity. Therefore, it is vital to probe into the structure of the catalysts to exploit high-performance bifunctional oxygen electrocatalysts. Spinel-type catalysts are a class of materials with advantages of versatility, low toxicity, low expense, high abundance, flexible ion arrangement, and multivalence structure. In this review, we afford a basic overview of spinel-type materials and then introduce the relevant theoretical principles for electrocatalytic activity, following that we shed light on the structure–property relationship strategies for spinel-type catalysts including electronic structure, microstructure, phase and composition regulation,and coupling with electrically conductive supports. We elaborate the relationship between structure and property, in order to provide some insights into the design of spinel-type bifunctional oxygen electrocatalysts. 展开更多
关键词 Spinel electrocatalyst Bifunctional energy electrocatalysis Oxygen evolution reaction Oxygen reduction reaction Structure–property relationship
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The origin of sulfuryl-containing components in SEI from sulfate additives for stable cycling of ultrathin lithium metal anodes 被引量:6
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作者 Jin-Xiu chen Xue-Qiang Zhang +8 位作者 Bo-Quan Li Xin-Meng Wang Peng Shi Wancheng Zhu aibing chen Zhehui Jin Rong Xiang Jia-Qi Huang Qiang Zhang 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2020年第8期128-131,I0005,共5页
In the light of wireless and non-fossil society based on portable electronics, electric vehicles, and smart grids, secondary batteries with higher energy density, faster charge, and safer operation are pursued persist... In the light of wireless and non-fossil society based on portable electronics, electric vehicles, and smart grids, secondary batteries with higher energy density, faster charge, and safer operation are pursued persistently [1]. Nowadays, commercial lithium(Li)-ion batteries have been practically applied in our daily life. However,the energy density of Li-ion batteries based on intercalation chemistry is approaching to the theoretical value due to the limited specific capacity of graphite anode(372 mA h g-1) [2]. 展开更多
关键词 Ultrathin lithium anodes DENDRITES Electrolyte additives Solid electrolyte interphase Lithium batteries
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Promise and challenge of vanadium-based cathodes for aqueous zinc-ion batteries 被引量:7
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作者 Yaru Zhang aibing chen Jie Sun 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2021年第3期655-667,共13页
Aqueous zinc-ion batteries(ZIBs)have got wide attention with the increasing demands for energy resource recently.It has a number of merits compared with lithium-ion batteries,such as enhanced safety,low cost and envir... Aqueous zinc-ion batteries(ZIBs)have got wide attention with the increasing demands for energy resource recently.It has a number of merits compared with lithium-ion batteries,such as enhanced safety,low cost and environmental friendliness.Vanadium-based materials have been developed to serve as the cathodes of ZIBs for many years.But there are also some challenges to construct high performance ZIBs in the future.Herein,we reviewed the research progress of vanadium-based cathodes and discussed the energy storage mechanisms in ZIBs.In addition,we summarized the major challenges faced by vanadium-based cathodes and the corresponding ways to improve electrochemical performance of ZIBs.Finally,some excellent vanadium-based cathodes are summarized to pave the way for future research in ZIBs. 展开更多
关键词 Zinc-ion batteries Vanadium-based cathodes Energy storage mechanisms
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Continuous Fabrication of Ti_(3)C_(2)T_x MXene-Based Braided Coaxial Zinc-Ion Hybrid Supercapacitors with Improved Performance 被引量:5
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作者 Bao Shi La Li +3 位作者 aibing chen Tien-Chien Jen Xinying Liu Guozhen Shen 《Nano-Micro Letters》 SCIE EI CAS CSCD 2022年第2期206-215,共10页
Zinc-ion hybrid fiber supercapacitors(FSCs)are promising energy storages for wearable electronics owing to their high energy density,good flexibility,and weavability.However,it is still a critical challenge to optimiz... Zinc-ion hybrid fiber supercapacitors(FSCs)are promising energy storages for wearable electronics owing to their high energy density,good flexibility,and weavability.However,it is still a critical challenge to optimize the structure of the designed FSC to improve energy density and realize the continuous fabrication of super-long FSCs.Herein,we propose a braided coaxial zinc-ion hybrid FSC with several meters of Ti_(3)C_(2)T_x MXene cathode as core electrodes,and shell zinc fiber anode was braided on the surface of the Ti_(3)C_(2)T_x MXene fibers across the solid electrolytes.According to the simulated results using ANSYS Maxwell software,the braided structures revealed a higher capacitance compared to the spring-like structures.The resulting FSCs exhibited a high areal capacitance of 214 mF cm^(-2),the energy density of 42.8μWh cm^(-2)at 5 mV s^(-1),and excellent cycling stability with 83.58%capacity retention after 5000 cycles.The coaxial FSC was tied several kinds of knots,proving a shape-controllable fiber energy storage.Furthermore,the knitted FSC showed superior stability and weavability,which can be woven into watch belts or embedded into textiles to power smart watches and LED arrays for a few days. 展开更多
关键词 Ti_(3)C_(2)T_x MXene Fiber supercapacitor Coaxial structure Zinc-ion
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A Review on Applications of Layered Phosphorus in Energy Storage 被引量:6
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作者 cheng Liu Yinghao Wang +1 位作者 Jie Sun aibing chen 《Transactions of Tianjin University》 EI CAS 2020年第2期104-126,共23页
Phosphorus in energy storage has received widespread attention in recent years. Both the high specific capacity and ion mobility of phosphorus may lead to a breakthrough in energy storage materials. Black phosphorus, ... Phosphorus in energy storage has received widespread attention in recent years. Both the high specific capacity and ion mobility of phosphorus may lead to a breakthrough in energy storage materials. Black phosphorus, an allotrope of phosphorus, has a sheet-like structure similar to graphite. In this review, we describe the structure and properties of black phosphorus and characteristics of the conductive electrode material, including theoretical calculation and analysis. The research progress in various ion batteries, including lithium-sulfur batteries, lithium–air batteries, and supercapacitors, is summarized according to the introduction of black phosphorus materials in different electrochemical applications. Among them, with the introduction of black phosphorus in lithium-ion batteries and sodium-ion batteries, the research on the properties of black phosphorus and carbon composite is introduced. Based on the summary, the future development trend and potential of black phosphorus materials in the field of electrochemistry are analyzed. 展开更多
关键词 LAYERED PHOSPHORUS TOPOLOGICAL construction BATTERIES SUPERCAPACITOR
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Ni nanoparticles confined by yolk-shell structure of CNT-mesoporous carbon for electrocatalytic conversion of CO_(2): Switching CO to formate 被引量:4
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作者 Juan Du aibing chen 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第7期224-229,I0006,共7页
Electrochemical reduction of CO_(2)(CO_(2)ER) to formate has been a promising route to produce value-added chemicals.Developing low-cost and efficient electrocatalysts with high product selectivity is still a grand ch... Electrochemical reduction of CO_(2)(CO_(2)ER) to formate has been a promising route to produce value-added chemicals.Developing low-cost and efficient electrocatalysts with high product selectivity is still a grand challenge.Herein,a novel Ni nanoparticles-anchored CNT coated by mesoporous carbon with yolk-shell structure (CNT/Ni@mC) catalysis was designed for CO_(2)ER.Ni nanoparticles were confined in the cavity between CNT and mesoporous carbon shell and the confined space can be controlled by tuning the amount of silica precursor.The mesoporous carbon shell and confined space are beneficial to charge transmission during CO_(2)ER.In contrast to previous studies,the CNT/Ni@mC catalyst presents selectivity toward formate rather than CO.Electrochemical in situ attenuated total reflection Fourier transform infrared spectroscopy measurements indicate the presence of a COO* intermediate that converts to formate under CO_(2)ER conditions.The well-defined structural feature of the confined space of the Ni-based catalyst for selective CO_(2)ER to formate may facilitate in-depth mechanistic understandings on structural factors that affect CO_(2)ER performance. 展开更多
关键词 Carbon dioxide electrochemical reduction Nickel-based catalyst FORMATE Yolk-shell CNT
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CNT modified by mesoporous carbon anchored by Ni nanoparticles for CO_(2) electrochemical reduction 被引量:4
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作者 Juan Du aibing chen +1 位作者 Senlin Hou Jing Guan 《Carbon Energy》 SCIE CAS 2022年第6期1274-1284,共11页
The design of novel catalysts for efficient electroreduction of CO_(2) into valueadded chemicals is a promising approach to alleviate the energy crisis.Herein,we successfully modify the carbon nanotube by a layer of m... The design of novel catalysts for efficient electroreduction of CO_(2) into valueadded chemicals is a promising approach to alleviate the energy crisis.Herein,we successfully modify the carbon nanotube by a layer of mesoporous carbon shell anchored by nickel(Ni)nanoparticles.Ni species effectively enable carbon deposition derived from pyrolysis of surfactant 1-hexadecyl trimethyl ammonium bromide to form a mesoporous carbon shell.At the same time,Ni nanoparticles can be embedded in the mesoporous carbon shell due to the confinement effect.Owing to the dispersive Ni nanoparticles and N-doping active sites of mesoporous carbon,the as-prepared electrocatalyst exhibits exciting catalytic performance for the selective reduction of CO_(2) to carbon monoxide(CO)with a maximum Faradaic efficiency of 98%at a moderate overpotential of−0.81 V(vs.reversible hydrogen electrode)and a high partial current density of 60 mA cm^(−2) in H-cell with an aqueous electrolyte. 展开更多
关键词 carbon dioxide electrochemical reduction carbon monoxide CNT highly dispersed nickel nanoparticles
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Highly soluble organic nitrate additives for practical lithium metal batteries 被引量:3
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作者 Zhe Wang Li-Peng Hou +11 位作者 Zheng Li Jia-Lin Liang Ming-Yue Zhou chen-Zi Zhao Xiaoyuan Zeng Bo-Quan Li aibing chen Xue-Qiang Zhang Peng Dong Yingjie Zhang Jia-Qi Huang Qiang Zhang 《Carbon Energy》 SCIE CAS CSCD 2023年第1期16-24,共9页
The stability of lithium metal anodes essentially dictates the lifespan of high-energy-density lithium metal batteries.Lithium nitrate(LiNO_(3))is widely recognized as an effective additive to stabilize lithium metal ... The stability of lithium metal anodes essentially dictates the lifespan of high-energy-density lithium metal batteries.Lithium nitrate(LiNO_(3))is widely recognized as an effective additive to stabilize lithium metal anodes by forming LiN_(x)O_(y)-containing solid electrolyte interphase(SEI).However,its poor solubility in electrolytes,especially ester electrolytes,hinders its applications in lithium metal batteries.Herein,an organic nitrate,isosorbide nitrate(ISDN),is proposed to replace LiNO_(3).ISDNhas a high solubility of 3.3M in ester electrolytes due to the introduction of organic segments in the molecule.The decomposition of ISDN generates LiN_(x)O_(y)-rich SEI,enabling uniform lithium deposition.The lifespan of lithium metal batteries with ISDN significantly increases from 80 to 155 cycles under demanding conditions.Furthermore,a lithium metal pouch cell of 439Whkg^(−1) delivers 50 cycles.This work opens a new avenue to develop additives by molecular modifications for practical lithium metal batteries. 展开更多
关键词 electrolyte additives lithium metal anodes organic nitrate pouch cells solid electrolyte interphase
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Review on Heteroatom Doping Carbonaceous Materials Toward Electrocatalytic Carbon Dioxide Reduction 被引量:3
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作者 Youan Ji Juan Du aibing chen 《Transactions of Tianjin University》 EI CAS 2022年第4期292-306,共15页
Carbon dioxide(CO_(2))reduction into chemicals or fuels by electrocatalysis can eff ectively reduce greenhouse gas emissions and alleviate the energy crisis.Currently,CO_(2)electrocatalytic reduction(CO_(2)RR)has been... Carbon dioxide(CO_(2))reduction into chemicals or fuels by electrocatalysis can eff ectively reduce greenhouse gas emissions and alleviate the energy crisis.Currently,CO_(2)electrocatalytic reduction(CO_(2)RR)has been considered as an ideal way to achieve“carbon neutrality.”In CO_(2)RR,the characteristics and properties of catalysts directly determine the reaction activity and selectivity of the catalytic process.Much attention has been paid to carbon-based catalysts because of their diversity,low cost,high availability,and high throughput.However,electrically neutral carbon atoms have no catalytic activity.Incorpo-rating heteroatoms has become an eff ective strategy to control the catalytic activity of carbon-based materials.The doped carbon-based catalysts reported at present show excellent catalytic performance and application potential in CO_(2)RR.Based on the type and quantity of heteroatoms doped into carbon-based catalysts,this review summarizes the performances and catalytic mechanisms of carbon-based materials doped with a single atom(including metal and without metal)and multi atoms(including metal and without metal)in CO_(2)RR and reveals prospects for developing CO_(2)electroreduction in the future. 展开更多
关键词 Heteroatoms doping Carbonaceous materials CO_(2)reduction ELECTROCATALYTIC
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Self-deposition for mesoporous carbon nanosheet with supercapacitor application 被引量:1
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作者 Juan Du aibing chen +1 位作者 Senlin Hou Xueqing Gao 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2023年第3期34-40,共7页
Porous carbon sheets have wide application prospects in many fields,especially in energy storage of supercapacitor due to the features combining both 2D structure and porous architectures.Herein,a self-deposition appr... Porous carbon sheets have wide application prospects in many fields,especially in energy storage of supercapacitor due to the features combining both 2D structure and porous architectures.Herein,a self-deposition approach is proposed to obtain N-doped mesoporous carbon nanosheets (N-MCNs),using 3-aminophenol (3-AF) as precursor and Mg(OH)_(2) sheet as hard template.This process realizes the direct carbon formation using 3-AF monomer as carbon precursor under the catalysis of hard template avoiding the polymerization and utilization of solvent.The mass ratio of 3-AF to Mg(OH)_(2) plays an important role in determining the pore structures and the resulting capacitance behavior.The results show that N-MCNs with a mass ratio of 3-AF and Mg(OH)_(2) of 1:1 have good electrochemical behavior for supercapacitors.This N-MCNs based electrode exhibits a high capacitance of 240 F·g^(-1)at 1 A·g^(-1),good rate performance(75.4%retention ratio at 20 A·g^(-1)),and high cycling stability with 98.3% initial capacitance retained after 10000 cycles.Symmetric supercapacitors on N-MCNs achieve energy density of 18.2 W·h·kg^(-1) and power density of 0.4 kW·kg^(-1) operated within a wide potential range of 0–1.6 V in 1.0 mol·L^(-1) Na_(2)SO_(4) solution,exhibiting its potential for electrode materials with high performance. 展开更多
关键词 Monomer self-deposition Mg(OH)_(2)catalysis Hard template Carbon nanosheet SUPERCAPACITOR
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A comprehensive modification enables the high rate capability of P2-Na_(0.75)Mn_(0.67)Ni_(0.33)O_(2) for sodium-ion cathode materials 被引量:1
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作者 Xiaochen Feng Yong Li +8 位作者 Qinhao Shi Xuan Wang Xiuping Yin Jing Wang Zhonghong Xia Haiyan Xiao aibing chen Xinxin Yang Yufeng Zhao 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第6期442-449,I0013,共9页
The Na^(+)/vacancy ordering can effectively affect the electrochemical behavior of P2-type cathode material.In this work we proposed an integrated strategy by attaining a high Na content,In^(3+) doping in conjunction ... The Na^(+)/vacancy ordering can effectively affect the electrochemical behavior of P2-type cathode material.In this work we proposed an integrated strategy by attaining a high Na content,In^(3+) doping in conjunction with NaInO_(2) coating in the P2-Na_(0.75)Mn_(0.67)Ni_(0.33)O_(2) which can inhibit the sodium vacancy order,smooth the electrochemical curve,and enhance the structural stability and rate capability.A combination of X-ray diffraction analysis and DFT calculation indicate that the In(3+) ions in the Na layer serve as"pillars”to stabilize the layered structure,especially for high current density charging.The P2-Na_(0.75)Mn_(0.67)Ni_(0.33)In_(0.02)O_(2) with an impressive sodium content exhibits a remarkable reversible capacity of 109.6 mAh g^(-1),superior rate capability capacity of 79.8 mAh g^(-1)at 20 C,and 85%capacity retention after 100 cycles at 5 C.This work demonstrates an efficient approach for the comprehensive optimization of sodium ion cathode materials. 展开更多
关键词 Sodium-ion batteries CATHODE P2-type layered oxides In doping DFT
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Fast and extensive intercalation chemistry in Wadsley-Roth phase based high-capacity electrodes 被引量:1
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作者 Miao Wang Zhenpeng Yao +6 位作者 Qianqian Li Yongfeng Hu Xiuping Yin aibing chen Xionggang Lu Jiujun Zhang Yufeng Zhao 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第6期601-611,I0017,共12页
Wadsley-Roth (W-R) structured oxides featured with wide channels represent one of the most promising material families showing compelling rate performance for lithium-ion batteries.Herein,we report an indepth study on... Wadsley-Roth (W-R) structured oxides featured with wide channels represent one of the most promising material families showing compelling rate performance for lithium-ion batteries.Herein,we report an indepth study on the fast and extensive intercalation chemistry of phosphorus stabilized W-R phase PNb_(9)O_(25) and its application in high energy and fast-charging devices.We explore the intercalation geometry of PNb_(9)O_(25) and identify two geometrical types of stable insertion sites with the total amount much higher than conventional intercalation-type electrodes.We reveal the ion transportation kinetics that the Li ions initially diffuse along the open type Ⅲ channels and then penetrate to edge sites with low kinetic barriers.During the lithiation,no remarkable phase transition is detected with nearly intact host phosphorous niobium oxide backbone.Therefore,the oxide framework of PNb_(9)O_(25) keeps almost unchanged with all the fast diffusion channels and insertion cavities well-maintained upon cycling,which accomplishes the unconventional electrochemical performance of W-R structured electrodes. 展开更多
关键词 Wadsley-Roth phase PNb_(9)O_(25) Intercalation chemistry Ion transportation kinetics Lithium-ion batteries
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Study on the occurrence state of indium in sphalerite of Dulong Sn–Zn–In polymetallic deposit,Southwest China
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作者 Lisheng Gao Hanjie Wen +3 位作者 Chuanwei Zhu Xin Nie aibing chen Guangshu Yang 《Acta Geochimica》 EI CAS CSCD 2023年第3期572-582,共11页
The Dulong deposit,located in the Laojunshan area of southeastern Yunnan,China,is an important polymetallic deposit due to its high reserves of tin,zinc,and indium.The occurrence state of indium is critical for unders... The Dulong deposit,located in the Laojunshan area of southeastern Yunnan,China,is an important polymetallic deposit due to its high reserves of tin,zinc,and indium.The occurrence state of indium is critical for understanding its supernormal enrichment mechanism.Previous studies investigated the occurrence state of indium(including the valence state)based on the indium content in sphalerite and the correlation between metal concentrations.However,more evidence is needed to better constrain indium occurrence at the micro-,nano-,or even atomic scale.In this study,EPMA-FIB-SEM-TEM and XPS techniques were employed to investigate the indium distribution characteristics and occurrence state in sphalerite from the Dulong Sn–Zn–In polymetallic deposit.The maximum concentration of indium in the indium-rich sphalerite samples is 0.37%,and the results of the EPMA analysis showed a relatively homogeneous distribution of indium in sphalerite.The FIB-SEM-TEM results demonstrated that the lattice stripes of sphalerite were periodically and continuously distributed at the nanoscale,confirming that sphalerite in the deposit was an excellent single crystal structure,and the peak heights of the various characteristic peaks of indium in the EDX spectra were relatively close to each other,with no distinct peaks of high indium content.In addition,the XPS results indicate that the element valence state of indium in sphalerite is In^(3+),and it combines with S^(2-)to form a bond.These results indicate that indium in sphalerite of the Dulong deposit is uniformly distributed at both the micro-and nanoscale,and there is no indium-independent mineral.In^(3+)enters the crystal lattice of sphalerite by replacing Zn2+in the form of isomorphic substitution. 展开更多
关键词 SPHALERITE INDIUM Occurrence state Dulong Sn–Zn–In polymetallic deposit
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A review of solid-state lithium metal batteries through in-situ solidification 被引量:11
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作者 Pan Xu Zong-Yao Shuang +12 位作者 chen-Zi Zhao Xue Li Li-Zhen Fan aibing chen Haoting chen Elena Kuzmina Elena Karaseva Vladimir Kolosnitsyn Xiaoyuan Zeng Peng Dong Yingjie Zhang Mingpei Wang Qiang Zhang 《Science China Chemistry》 SCIE EI CSCD 2024年第1期67-86,共20页
High-energy-density lithium metal batteries are the next-generation battery systems of choice,and replacing the flammable liquid electrolyte with a polymer solid-state electrolyte is a prominent conduct towards realiz... High-energy-density lithium metal batteries are the next-generation battery systems of choice,and replacing the flammable liquid electrolyte with a polymer solid-state electrolyte is a prominent conduct towards realizing the goal of high-safety and high-specific-energy devices.Unfortunately,the inherent intractable problems of poor solid-solid contacts between the electrode/electrolyte and the growth of Li dendrites hinder their practical applications.The in-situ solidification has demonstrated a variety of advantages in the application of polymer electrolytes and artificial interphase,including the design of integrated polymer electrolytes and asymmetric polymer electrolytes to enhance the compatibility of solid–solid contact and compatibility between various electrolytes,and the construction of artificial interphase between the Li anode and cathode to suppress the formation of Li dendrites and to enhance the high-voltage stability of polymer electrolytes.This review firstly elaborates the history of in-situ solidification for solid-state batteries,and then focuses on the synthetic methods of solidified electrolytes.Furthermore,the recent progress of in-situ solidification technology from both the design of polymer electrolytes and the construction of artificial interphase is summarized,and the importance of in-situ solidification technology in enhancing safety is emphasized.Finally,prospects,emerging challenges,and practical applications of in-situ solidification are envisioned. 展开更多
关键词 in-situ solidification polymer electrolyte artificial solid electrolyte interphase rechargeable lithium metal batteries dendrite-free lithium metal anode
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High-performance localized high-concentration electrolytes by diluent design for long-cycling lithium metal batteries
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作者 Zhe Wang Li-Peng Hou +4 位作者 Qian-Kui Zhang Nan Yao aibing chen Jia-Qi Huang Xue-Qiang Zhang 《Chinese Chemical Letters》 SCIE CAS CSCD 2024年第4期244-247,共4页
Electrolyte design is essential for stabilizing lithium metal anodes and localized high-concentration electrolyte(LHCE) is a promising one. However, the state-of-the-art LHCE remains insufficient to ensure long-cyclin... Electrolyte design is essential for stabilizing lithium metal anodes and localized high-concentration electrolyte(LHCE) is a promising one. However, the state-of-the-art LHCE remains insufficient to ensure long-cycling lithium metal anodes. Herein, regulating the solvation structure of lithium ions in LHCE by weakening the solvating power of diluents is proposed for improving LHCE performance. A diluent,1,1,2,2,3,3,4,4-octafluoro-5-(1,1,2,2-tetrafluoroethoxy) pentane(OFE), with weaker solvating power is introduced to increase the proportion of aggregates(an anion interacts with more than two lithium ions,AGG-n) in electrolyte compared with the commonly used 1,1,2,2-tetrafluoroethyl-2,2,3,3-tetrafluoropropyl ether(TTE). The decomposition of AGG-n in OFE-based LHCE intensifies the formation of anion-derived solid electrolyte interphase and improves the uniformity of lithium deposition. Lithium metal batteries with OFE-based LHCE deliver a superior lifespan of 190 cycles compared with 90 cycles of TTE-based LHCE under demanding conditions. Furthermore, a pouch cell with OFE-based LHCE delivers a specific energy of 417 Wh/kg and undergoes 49 cycles. This work provides guidance for designing high-performance electrolytes for lithium metal batteries. 展开更多
关键词 Lithium metal anodes ELECTROLYTE DILUENTS Solid electrolyte interphase Pouch cells
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Application of supramolecular hydrogel in supercapacitors: Opportunities and challenges
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作者 Wenshi Xu aibing chen 《Aggregate》 EI CAS 2024年第5期159-180,共22页
Supercapacitors(SCs)are studied and used in variousfields due to their high power density,fast charging/discharging rate,as well as long cycle life.Compared to other traditional electrode and electrolyte materials,supr... Supercapacitors(SCs)are studied and used in variousfields due to their high power density,fast charging/discharging rate,as well as long cycle life.Compared to other traditional electrode and electrolyte materials,supramolecular hydrogels have great advantages in the application of SCs due to their excellent properties.Unlike covalent bonds,supramolecular systems are assembled through dynamic reversible bonds,including host–guest interactions,ion interactions,electrostatic interactions,hydrogen bonding,coordination interactions,etc.The resulting supramolecular hydrogels show some special functions,such as stretching,compression,adhesion,self-healing,stimulus responsiveness,etc.,making them strong candidates for the next generation of energy storage devices.This paper reviews the representative progress of electrodes,electrolytes,and SCs based on supramolecular hydrogels.Besides,the properties of supramolecular hydrogels,such as conductivity,exten-sibility,compressibility and elasticity,self-healing,frost resistance,adhesion,andflexibility,are also reviewed to highlight the key role of excellent properties of hydro-gel materials in SCs.In addition,this article also discusses the challenges faced by current technologies,hoping to continue promoting future research in thisfield. 展开更多
关键词 ELECTRODE ELECTROLYTE noncovalent interactions SUPERCAPACITORS supramolecular hydrogel
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