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Regulating the“core-shell”microstructure of hard carbon through sodium hydroxide activation for achieving high-capacity SIBs anode 被引量:5
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作者 Haihua Wang Huizhu Niu +6 位作者 Kewei Shu Liyu Sun Yu Wang Yifan Du Yun Han Cunguo Yang Yong-Mook Kang 《Journal of Materials Science & Technology》 2025年第6期161-170,共10页
Pore structure engineering has been acknowledged as suitable approach to creating active sites and en-hancing ion transport capabilities of hard carbon anodes.However,conventional porous carbon materials exhibit high ... Pore structure engineering has been acknowledged as suitable approach to creating active sites and en-hancing ion transport capabilities of hard carbon anodes.However,conventional porous carbon materials exhibit high BET and surface defects.Additionally,the sodium storage mechanism predominantly occurs in the slope region.This contradicts practical application requirements because the capacity of the plateau region is crucial for determining the actual capacity of batteries.In our work,we prepared a novel“core-shell”carbon framework(CNA1200).Introducingclosedporesand carboxylgroupsinto coal-basedcarbon materials to enhance its sodium storage performance.The closed pore structure dominates in the“core”structure,which is attributed to the timely removal of sodium hydroxide(NaOH)to prevent further for-mation of active carbon structure.The presence of closed pores is beneficial for increasing sodium ion storage in the low-voltage plateau region.And the“shell”structure originates from coal tar pitch,it not only uniformly connects hard carbon particles together to improve cycling stability,but is also rich in carboxyl groups to enhance the reversible sodium storage performance in slope region.CNA1200 has ex-cellent electrochemical performance,it exhibits a specific capacity of 335.2 mAh g^(−1)at a current density of 20 mA g^(−1)with ICE=51.53%.In addition,CNA1200 has outstanding cycling stability with a capac-ity retention of 91.8%even when cycling over 200 times.When CNA1200 is used as anode paired with Na_(3)V_(2)(PO_(4))_(3)cathode,it demonstrates a capacity of 109.54 mAh g^(−1)at 0.1 C and capacity retention of 94.64%at 0.5 C.This work provides valuable methods for regulating the structure of sodium-ion battery(SIBs)anode and enhances the potential for commercialization. 展开更多
关键词 hard carbon plateau region NaOH controlled etching-thermal annealing Closed pore structure Carboxyl groups Coal-based carbon materials
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Confined soft carbon in hard carbon with enhanced ion transport kinetics as anode for high-rate and stable potassium-ion batteries 被引量:2
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作者 Yong Li Aoyang Zhu +5 位作者 Guodong Peng Jun He Hongqiang Li Dedong Jia Jieshan Qiu Xiaojun He 《Journal of Energy Chemistry》 2025年第4期97-105,共9页
Biomass-derived hard carbon is becoming promising anodes for potassium-ion batteries(PIBs)thanks to their resource abundance.Yet,it is a big challenge to improve the charge carrier kinetics of the disordered carbon la... Biomass-derived hard carbon is becoming promising anodes for potassium-ion batteries(PIBs)thanks to their resource abundance.Yet,it is a big challenge to improve the charge carrier kinetics of the disordered carbon lattice in hard carbon.Herein,confined pitch-based soft carbon in pollen-derived hard carbon(PSC/PHC)is synthesized by vapor deposition strategy as anodes for PIBs.The ordered pitch-based soft carbon compensates for the short-range electron conduction in hard carbon to enhance the charge transfer kinetics,and the externally disordered pollen-derived hard carbon alleviates the volume change of soft carbon during cycling.Benefiting from the synergistic effect of soft and hard carbon,as well as the reinforced structure of order-in-disordered carbon,the PSC/PHC obtained with deposition time of 0.5 h(PSC/PHC-0.5)displays an excellent rate capability(148.7 mAh g^(-1)at 10 A g^(-1))and superb cycling stability(70%retention over 2000 cycles at 1 A g^(-1)).This work offers a unique insight in tuning the microcrystalline structure of soft-hard carbon anode for advanced PIBs. 展开更多
关键词 Biomass-derived hard carbon Pitch-based soft carbon Microcrystalline regulation engineering Order-in-disordered carbon Potassium-ion batteries
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Analysis of vibration response characteristics of subway station and superstructure with hard combination 被引量:1
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作者 Jia Jinglong Xu Weiping +1 位作者 Liu Xu Wei Yong 《Earthquake Engineering and Engineering Vibration》 2025年第1期271-281,共11页
The vibration response and noise caused by subway trains can affect the safety and comfort of superstructures.To study the dynamic response characteristics of subway stations and superstructures under train loads with... The vibration response and noise caused by subway trains can affect the safety and comfort of superstructures.To study the dynamic response characteristics of subway stations and superstructures under train loads with a hard combination,a numerical model is developed in this study.The indoor model test verified the accuracy of the numerical model.The influence laws of different hard combinations,train operating speeds and modes were studied and evaluated accordingly.The results show that the frequency corresponding to the peak vibration acceleration level of each floor of the superstructure property is concentrated at 10–20 Hz.The vibration response decreases in the high-frequency parts and increases in the lowfrequency parts with increasing distance from the source.Furthermore,the factors,such as train operating speed,operating mode,and hard combination type,will affect the vibration of the superstructure.The vibration response under the reversible operation of the train is greater than that of the unidirectional operation.The operating speed of the train is proportional to its vibration response.The vibration amplification area appears between the middle and the top of the superstructure at a higher train speed.Its vibration acceleration level will exceed the limit value of relevant regulations,and vibration-damping measures are required.Within the scope of application,this study provides some suggestions for constructing subway stations and superstructures. 展开更多
关键词 subway station SUPERSTRUCTURE vibration response hard combination
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Regulating pore structure and pseudo-graphitic phase of hard carbon anode towards enhanced sodium storage performance 被引量:1
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作者 Guang Zeng Yue Zeng +5 位作者 Huamin Hu Yaqing Bai Fangjie Nie Junfei Duan Zhaoyong Chen Qi-Long Zhu 《Chinese Chemical Letters》 2025年第7期560-567,共8页
The pore structure and pseudo-graphitic phase(domain size and content)of a hard carbon anode play key roles in improving the plateau capacity of sodium-ion batteries(SIBs),while it is hard to regulate them effectively... The pore structure and pseudo-graphitic phase(domain size and content)of a hard carbon anode play key roles in improving the plateau capacity of sodium-ion batteries(SIBs),while it is hard to regulate them effectively and simultaneously.This study delves into the synthesis of hard carbons with tailored microstructures from esterified sodium carboxymethyl cellulose(CMC-Na).The hard carbon(EHC-500)with maximized pseudo-graphitic content(73%)and abundant uniformly dispersed closed pores was fabricated,which provides sufficient active sites for sodium ion intercalation and pore filling.Furthermore,minimized lateral width(L_(a))of pseudo-graphitic domains in EHC-500 is simultaneously realized to improve the accessibility of sodium ions to the intercalation sites and filling sites.Therefore,the optimized microstructure of EHC-500 contributes to a remarkable reversible capacity of 340 mAh/g with a high plateau capacity of 236.7 mAh/g(below 0.08 V).These findings underscore the pivotal role of microcrystalline structure and pore structure in the electrochemical performance of hard carbons and provide a novel route to guide the design of hard carbons with optimal microstructures towards enhanced sodium storage performance. 展开更多
关键词 hard carbons Plateau capacity ESTERIFICATION Microstructure regulation Sodium-ion batteries
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Multi boron-doping effects in hard carbon toward enhanced sodium ion storage 被引量:1
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作者 Peng Zheng Wang Zhou +7 位作者 Ying Mo Biao Zheng Miaomiao Han Qin Zhong Wenwen Yang Peng Gao Lezhi Yang Jilei Liu 《Journal of Energy Chemistry》 2025年第1期730-738,共9页
Hard carbon (HC) has been considered as promising anode material for sodium-ion batteries (SIBs).The optimization of hard carbon’s microstructure and solid electrolyte interface (SEI) property are demonstrated effect... Hard carbon (HC) has been considered as promising anode material for sodium-ion batteries (SIBs).The optimization of hard carbon’s microstructure and solid electrolyte interface (SEI) property are demonstrated effective in enhancing the Na+storage capability,however,a one-step regulation strategy to achieve simultaneous multi-scale structures optimization is highly desirable.Herein,we have systematically investigated the effects of boron doping on hard carbon’s microstructure and interface chemistry.A variety of structure characterizations show that appropriate amount of boron doping can increase the size of closed pores via rearrangement of carbon layers with improved graphitization degree,which provides more Na+storage sites.In-situ Fourier transform infrared spectroscopy/electrochemical impedance spectroscopy (FTIR/EIS) and X-ray photoelectron spectroscopy (XPS) analysis demonstrate the presence of more BC3and less B–C–O structures that result in enhanced ion diffusion kinetics and the formation of inorganic rich and robust SEI,which leads to facilitated charge transfer and excellent rate performance.As a result,the hard carbon anode with optimized boron doping content exhibits enhanced rate and cycling performance.In general,this work unravels the critical role of boron doping in optimizing the pore structure,interface chemistry and diffusion kinetics of hard carbon,which enables rational design of sodium-ion battery anode with enhanced Na+storage performance. 展开更多
关键词 hard carbon Sodium-ion batteries Boron doping Pore structure Electrode/electrolyte interphases
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A dataset for the structure and electrochemical performance of hard carbon as anodes for sodium-ion batteries
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作者 HOU Wei-yan YI Zong-lin +7 位作者 JIA Wan-ru YU Hong-tao DAI Li-qin YANG Jun-jie CHEN Jing-peng XIE Li-jing SU Fang-yuan CHEN Cheng-meng 《新型炭材料(中英文)》 北大核心 2025年第5期1193-1200,共8页
This data set collects,compares and contrasts the capacities and structures of a series of hard carbon materials,and then searches for correlations between structure and electrochemical performance.The capacity data o... This data set collects,compares and contrasts the capacities and structures of a series of hard carbon materials,and then searches for correlations between structure and electrochemical performance.The capacity data of the hard carbons were obtained by charge/discharge tests and the materials were characterized by XRD,gas adsorption,true density tests and SAXS.In particular,the fitting of SAXS gave a series of structural parameters which showed good characterization.The related test details are given with the structural data of the hard carbons and the electrochemical performance of the sodium-ion batteries. 展开更多
关键词 hard carbon Sodium-ion battery SAXS Structural characterization DATASET
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Microstructure-mechanism-performance relationships in hard carbon anode materials for sodium-ion batteries
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作者 LI Jin-ting Sawut Nurbiye +3 位作者 ZHAO Yi-chu LIU Ping WANG Yan-xia CAO Yu-liang 《新型炭材料(中英文)》 北大核心 2025年第4期860-869,共10页
The advantages of sodium-ion batteries(SIBs)for large-scale energy storage are well known.Among possible anode materials,hard carbon(HC)stands out as the most viable commercial option because of its superior performan... The advantages of sodium-ion batteries(SIBs)for large-scale energy storage are well known.Among possible anode materials,hard carbon(HC)stands out as the most viable commercial option because of its superior performance.However,there is still disagreement regarding the sodium storage mechanism in the low-voltage plateau region of HC anodes,and the structure-performance relationship between its complex multiscale micro/nanostructure and electrochemical behavior remains unclear.This paper summarizes current research progress and the major problems in understanding HC’s microstructure and sodium storage mechanism,and the relationship between them.Findings about a universal sodium storage mechanism in HC,including predictions about micropore-capacity relationships,and the opportunities and challenges for using HC anodes in commercial SIBs are presented. 展开更多
关键词 Sodium-ion battery hard carbon ANODE Closed pore
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Coating super-crosslinked polycyclic aromatic molecules on hard carbon microspheres for a sodium-ion battery anode
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作者 YE Yong-hong YU Xing-bo +5 位作者 ZHANG Guo-li LI Hui-hui GUAN Sheng-qin WANG Jian-long LI Kai-xi GUAN Tao-tao 《新型炭材料(中英文)》 北大核心 2025年第5期1098-1112,I0022-I0028,共22页
Sodium-ion batteries(SIBs)have emerged as a promising contender for next-gener-ation energy storage systems.Hard carbon is re-garded as the most promising anode for commer-cial SIB,however,the large number of defects ... Sodium-ion batteries(SIBs)have emerged as a promising contender for next-gener-ation energy storage systems.Hard carbon is re-garded as the most promising anode for commer-cial SIB,however,the large number of defects on its surface cause irreversible electrolyte consump-tion and an uneven solid electrolyte interphase film.An advanced molecular engineering strategy to coat hard carbon with polycyclic aromatic mo-lecules is reported.Specifically,polystyrene-based carbon microspheres(CSs)were first synthesized and then coated with polycyclic aromatic mo-lecules derived from coal tar pitch by spray-drying and followed by oxidation.Compared to the traditional CVD coating meth-od,this molecular framework strategy has been shown to reduce the number of defects on the surface of CSs without sacrifi-cing internal storage sites and suppressing transport kinetics in hosting the sodium ions.Besides the lower surface defect con-centration,the synthesized hybrid carbon microspheres(HCSs)have a larger grain size and more abundant closed pores,and have a higher reversible sodium storage capacity.A HCS-P-60%electrode has a capacity of 332.3 mAh g^(-1)with an initial Cou-lombic efficiency of 88.5%.It also has a superior rate performance of 246.6 mAh g^(-1)at 2 C and a 95.2%capacity retention after 100 cycles at 0.2 C.This work offers new insights into designing high-performance hard carbon microsphere anodes,advan-cing the commercialization of sodium-ion batteries. 展开更多
关键词 hard carbon Carbon microsphere Coal tar pitch Sodium-ion battery ANODE
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Graphene Size Dependent Hardness and Strengthening Mechanisms of Cu/Graphene Composites:A Molecular Dynamics Study
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作者 Zhang Shuang Chang Guo +5 位作者 Li Liang Li Xiang Peng Haoran Chen Kaiyun Yang Nan Huo Wangtu 《稀有金属材料与工程》 北大核心 2025年第1期17-26,共10页
The extraordinary strength of metal/graphene composites is significantly determined by the characteristic size,distribution and morphology of graphene.However,the effect of the graphene size/distribution on the mechan... The extraordinary strength of metal/graphene composites is significantly determined by the characteristic size,distribution and morphology of graphene.However,the effect of the graphene size/distribution on the mechanical properties and related strengthening mechanisms has not been fully elucidated.Herein,under the same volume fraction and distribution conditions of graphene,molecular dynamics simulations were used to investigate the effect of graphene sheet size on the hardness and deformation behavior of Cu/graphene composites under complex stress field.Two models of pure single crystalline Cu and graphene fully covered Cu matrix composite were constructed for comparison.The results show that the strengthening effect changes with varying the graphene sheet size.Besides the graphene dislocation blocking effect and the load-bearing effect,the deformation mechanisms change from stacking fault tetrahedron,dislocation bypassing and dislocation cutting to dislocation nucleation in turn with decreasing the graphene sheet size.The hardness of Cu/graphene composite,with the graphene sheet not completely covering the metal matrix,can even be higher than that of the fully covered composite.The extra strengthening mechanisms of dislocation bypassing mechanism and the stacking fault tetrahedra pinning dislocation mechanism contribute to the increase in hardness. 展开更多
关键词 Cu/graphene composites graphene size hardNESS strengthening mechanism molecular dynamics
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Changing the pore structure and surface chemistry of hard carbon by coating it with a soft carbon to boost high-rate sodium storage
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作者 ZHONG Qin MO Ying +9 位作者 ZHOU Wang ZHENG Biao WU Jian-fang LIU Guo-ku Mohd Zieauddin Kufian Zurina Osman XU Xiong-wen GAO Peng YANG Le-zhi LIU Ji-lei 《新型炭材料(中英文)》 北大核心 2025年第3期651-665,共15页
Changes to the microstructure of a hard carbon(HC)and its solid electrolyte interface(SEI)can be effective in improving the electrode kinetics.However,achieving fast charging using a simple and inexpensive strategy wi... Changes to the microstructure of a hard carbon(HC)and its solid electrolyte interface(SEI)can be effective in improving the electrode kinetics.However,achieving fast charging using a simple and inexpensive strategy without sacrificing its initial Coulombic efficiency remains a challenge in sodium ion batteries.A simple liquid-phase coating approach has been used to generate a pitch-derived soft carbon layer on the HC surface,and its effect on the porosity of HC and SEI chemistry has been studied.A variety of structural characterizations show a soft carbon coating can increase the defect and ultra-micropore contents.The increase in ultra-micropore comes from both the soft carbon coatings and the larger pores within the HC that are partially filled by pitch,which provides more Na+storage sites.In-situ FTIR/EIS and ex-situ XPS showed that the soft carbon coating induced the formation of thinner SEI that is richer in NaF from the electrolyte,which stabilized the interface and promoted the charge transfer process.As a result,the anode produced fastcharging(329.8 mAh g^(−1)at 30 mA g^(−1)and 198.6 mAh g^(−1)at 300 mA g^(−1))and had a better cycling performance(a high capacity retention of 81.4%after 100 cycles at 150 mA g^(−1)).This work reveals the critical role of coating layer in changing the pore structure,SEI chemistry and diffusion kinetics of hard carbon,which enables rational design of sodium-ion battery anode with enhanced fast charging capability. 展开更多
关键词 hard carbon Pitch-derived carbon coating Sodium-ion batteries Pore structure Surface chemistry
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Tailoring the pore structure of hard carbon for enhanced sodium-ion battery anodes
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作者 SONG Ning-Jing MA Can-liang +3 位作者 GUO Nan-nan ZHAO Yun LI Wan-xi LI Bo-qiong 《新型炭材料(中英文)》 北大核心 2025年第2期377-391,共15页
Biomass-derived hard carbons,usually prepared by pyrolysis,are widely considered the most promising anode materials for sodium-ion bat-teries(SIBs)due to their high capacity,low poten-tial,sustainability,cost-effectiv... Biomass-derived hard carbons,usually prepared by pyrolysis,are widely considered the most promising anode materials for sodium-ion bat-teries(SIBs)due to their high capacity,low poten-tial,sustainability,cost-effectiveness,and environ-mental friendliness.The pyrolysis method affects the microstructure of the material,and ultimately its so-dium storage performance.Our previous work has shown that pyrolysis in a sealed graphite vessel im-proved the sodium storage performance of the car-bon,however the changes in its microstructure and the way this influences the sodium storage are still unclear.A series of hard carbon materials derived from corncobs(CCG-T,where T is the pyrolysis temperature)were pyrolyzed in a sealed graphite vessel at different temperatures.As the pyrolysis temperature increased from 1000 to 1400℃ small carbon domains gradually transformed into long and curved domains.At the same time,a greater number of large open pores with uniform apertures,as well as more closed pores,were formed.With the further increase of pyrolysis temperature to 1600℃,the long and curved domains became longer and straighter,and some closed pores gradually became open.CCG-1400,with abundant closed pores,had a superior SIB performance,with an initial reversible ca-pacity of 320.73 mAh g^(-1) at a current density of 30 mA g^(-1),an initial Coulomb efficiency(ICE)of 84.34%,and a capacity re-tention of 96.70%after 100 cycles.This study provides a method for the precise regulation of the microcrystalline and pore structures of hard carbon materials. 展开更多
关键词 Pore structure regulation Closed pore Corn cob hard carbon anode material Sodium-ion batteries
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Transformative Catalytic Carbon Conversion Enabling Superior Graphitization and Nanopore Engineering in Hard Carbon Anodes for Sodium-Ion Batteries
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作者 Guilai Zhang Hong Gao +14 位作者 Dingyi Zhang Jun Xiao Limeng Sun Jiayi Li Congcong Li Yiwen Sun Xinyao Yuan Peng Huang Yi Xu Xin Guo Yufei Zhao Yong Wang Yao Xiao Guoxiu Wang Hao Liu 《Carbon Energy》 2025年第6期37-46,共10页
Hard carbons are promising anode materials for sodium-ion batteries(SIBs),but they face challenges in balancing rate capability,specific capacity,and initial Coulombic efficiency(ICE).Direct pyrolysis of the precursor... Hard carbons are promising anode materials for sodium-ion batteries(SIBs),but they face challenges in balancing rate capability,specific capacity,and initial Coulombic efficiency(ICE).Direct pyrolysis of the precursor often fails to create a suitable structure for sodium-ion storage.Molecular-level control of graphitization with open channels for Na^(+)ions is crucial for high-performance hard carbon,whereas closed pores play a key role in improving the low-voltage(<0.1 V)plateau capacity of hard carbon anodes for SIBs.However,creation of these closed pores presents significant challenges.This work proposes a zinc gluconate-assisted catalytic carbonization strategy to regulate graphitization and create numerous nanopores simultaneously.As the temperature increases,trace amounts of zinc remain as single atoms in the hard carbon,featuring a uniform coordination structure.This mitigates the risk of electrochemically irreversible sites and enhances sodium-ion transport rates.The resulting hard carbon shows an excellent reversible capacity of 348.5 mAh g^(-1) at 30 mA g^(-1) and a high ICE of 92.84%.Furthermore,a sodium storage mechanism involving“adsorption-intercalation-pore filling”is elucidated,providing insights into the pore structure and dynamic pore-filling process. 展开更多
关键词 catalytic carbonization GRAPHITIZATION hard carbon NANOPORES sodium-ion batteries
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THE THREE LITTLE PIGS Hard work and smart choices are always best
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作者 Ruth Devlin 《空中英语教室(初级版.大家说英语)》 2025年第10期32-35,54,56,共6页
Find It Why was the third pig the smartest?nee upon a time,three little pigs lived with their mother.One day,she told them,"You are big now.Go build homes and take care of yourselves."So,the three pigs left ... Find It Why was the third pig the smartest?nee upon a time,three little pigs lived with their mother.One day,she told them,"You are big now.Go build homes and take care of yourselves."So,the three pigs left and went to find places to live.The first little pig didn't like to work hard.He found some straw. 展开更多
关键词 third pig hard work smart choices STRAW
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Micropore filling and sodium cluster formation in optimized hard carbon for robust sodium storage
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作者 Zhiyuan Liu Hui Peng +4 位作者 Xin Wang Xuan Xie Yue Li Guofu Ma Ziqiang Lei 《Journal of Energy Chemistry》 2025年第9期118-128,I0005,共12页
Research on hard carbon(HC)anodes for sodium-ion storage has focused on sodium storage mechanisms in both the high-potential slope and low-potential plateau regions,with the latter being particularly critical for enha... Research on hard carbon(HC)anodes for sodium-ion storage has focused on sodium storage mechanisms in both the high-potential slope and low-potential plateau regions,with the latter being particularly critical for enhancing energy density.Herein,a novel approach that combines ion exchange with low-temperature pyrolysis is presented to develop a closed-pore structure within HC.Leveraging a hard-template design,this approach precisely controls pore distribution and morphology,leading to a significant increase in the proportion of closed pores.In-situ characterization,density functional theory(DFT)calculations,and multi-scale simulations are used to investigate the micropore filling by sodium ions and the formation of clusters within the closed-pore structure.The findings underscore the crucial role of these structural features in enhancing electrochemical performance and offer a quantitative framework for the design of advanced HC materials.The optimized HC demonstrates a high reversible capacity of 413 mAh g^(-1)at a current density of 0.1 A g^(-1),excellent rate capability,and exceptional stability over 10,000 cycles.This study offers valuable insights into sodium-ion storage mechanisms in closed-pore HC and lays the groundwork for developing efficient and durable sodium storage materials. 展开更多
关键词 hard carbon Closed-pore structure hard-template design Sodium-ion storage
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Comprehensive Understanding of Closed Pores in Hard Carbon Anode for High-Energy Sodium-Ion Batteries
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作者 Siyang Gan Yujie Huang +9 位作者 Ningyun Hong Yinghao Zhang Bo Xiong Zhi Zheng Zidong He Shengrui Gao Wentao Deng Guoqiang Zou Hongshuai Hou Xiaobo Ji 《Nano-Micro Letters》 2025年第12期679-731,共53页
Hard carbon(HC)is considered the most promising anode material for sodium-ion batteries(SIBs)due to its high costeffectiveness and outstanding overall performance.However,the amorphous and intricate microstructure of ... Hard carbon(HC)is considered the most promising anode material for sodium-ion batteries(SIBs)due to its high costeffectiveness and outstanding overall performance.However,the amorphous and intricate microstructure of HC poses significant challenges in elucidating the structure-performance relationship,which has led to persistent misinterpretations regarding the intrinsic characteristics of closed pores.An irrational construction methodology of closed pores inevitably results in diminished plateau capacity,which severely restricts the practical application of HC in high-energy-density scenarios.This review provides a systematic exposition of the conceptual framework and origination mechanisms of closed pores,offering critical insights into their structural characteristics and formation pathways.Subsequently,by correlating lattice parameters with defect configurations,the structure-performance relationships governing desolvation kinetics and sodium storage behavior are rigorously established.Furthermore,pioneering advancements in structural engineering are critically synthesized to establish fundamental design principles for the rational modulation of closed pores in HC.It is imperative to emphasize that adopting a molecular-level perspective,coupled with a synergistic kinetic/thermodynamic approach,is critical for understanding and controlling the transformation process from open pores to closed pores.These innovative perspectives are strategically designed to accelerate the commercialization of HC,thereby catalyzing the sustainable and high-efficiency development of SIBs. 展开更多
关键词 hard carbon Closed pores ANODE Sodium-ion batteries High energy density
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Influence of typical elements and heat treatment parameters on hardenability in steel:a review
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作者 Bin-bin Wang De-xin Zhu +7 位作者 Chao-lei Zhang Xiao-ye Zhou Hong-hui Wu Shui-ze Wang Gui-lin Wu Jun-heng Gao Hai-tao Zhao Xin-ping Mao 《Journal of Iron and Steel Research International》 2025年第6期1455-1467,共13页
The hardenability of steel is crucial for its durability and performance in engineering applications,significantly influencing mechanical properties such as hardness,strength,and wear resistance.As the engineering fie... The hardenability of steel is crucial for its durability and performance in engineering applications,significantly influencing mechanical properties such as hardness,strength,and wear resistance.As the engineering field continuously demands higher-performance steel materials,a deep understanding of the key influencing factors on hardenability is crucial for developing quality steel that meets stringent application requirements.The effects of some specific elements,including carbon(C),vanadium(V),molybdenum(Mo),and boron(B),as well as heat treatment process parameters such as austenitizing temperature,austenitizing holding time,and cooling rate,were examined.It aims to elucidate the interactions among these factors and their influence on steel hardenability.For each influencing factor,the heat treatment procedure,characteristic microstructure resulting from it,and corresponding Jominy end quench curves were discussed.Furthermore,based on the continuous development of big data technology in the field of materials,the use of machine learning to predict the hardenability of steel and guide the design of steel material was also introduced. 展开更多
关键词 hardENABILITY Jominy end quench test Heat treatment Steel hardness AUSTENITE MARTENSITE
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Multi-omics analysis guided discovery:hydroxyproline enhance muscle hardness of hybrid bream(BBTB,Megalobrama amblycephala♀×Culter alburnus♂)via myofiber proliferation and collagen deposition
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作者 Anli Zuo Zhehua Xu +9 位作者 Yimiao He Junchi Zhao Qianting Zheng Mingyu Zhang Weiting Zhang Jianzhou Tang Shenping Cao Qiong Zhao Junyan Jin Zhen Liu 《Marine Life Science & Technology》 2025年第4期962-977,共16页
Hardness is widely regarded as a critical factor influencing the whole texture of fish flesh.The objective of this study was to elucidate the regulatory mechanism underlying muscle hardness in hybrid bream(BBTB,Megalo... Hardness is widely regarded as a critical factor influencing the whole texture of fish flesh.The objective of this study was to elucidate the regulatory mechanism underlying muscle hardness in hybrid bream(BBTB,Megalobrama amblycephala♀×Culter alburnus♂).A comparison of the physiological features of high hardness(HH)and low hardness(LH)muscle revealed that the former had higher contents of collagen I and lower muscle fiber diameter.Transcriptomic data revealed that the myofiber assembly pathway and the HIF-1 signaling pathway were activated in HH muscle.At the metabolic level,the categories of amino acids and lipids were the principal differentially abundant metabolites between the HH and LH muscle.The detection of amino acid profiles further revealed significant differences in amino acid metabolism between the HH and LH muscles,with the HH muscle having higher levels of amino acids than the LH muscle,especially hydroxypro-line(Hyp).Furthermore,through supplementation of Hyp in BBTB myoblasts,the results indicated that 0.8 mmol/L Hyp increased the proliferation,differentiation,migration,and collagen synthesis of myoblasts.Finally,BBTB was treated with Hyp intraperitoneally for 15 days.The results revealed that 0.1 g/kg Hyp significantly increased muscle hardness,myofiber density,myofibrillar protein synthesis,and HIF-1 protein content.The results obtained in this study indicated that Hyp supplementation promoted collagen synthesis and proliferation of myoblast and muscle fibers in the BBTB,which may be induced by activation of the transcription factor HIF1 and contributes to the impacts of Hyp on improvements in muscle hardness in the BBTB. 展开更多
关键词 Muscle hardness HYDROXYPROLINE Amino acid metabolism Myofiber proliferation Collagen deposition
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Characterization of elastic modulus and hardness of brittle solids by instrumented indentation
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作者 Zhitong Xu Ming Liu Jianghong Gong 《Acta Mechanica Sinica》 2025年第1期141-162,共22页
The reduced elastic modulus Er and indentation hardness HIT of various brittle solids including ceramics,semiconductors,glasses,single crystals,and laser material were evaluated using nanoindentation.Various analysis ... The reduced elastic modulus Er and indentation hardness HIT of various brittle solids including ceramics,semiconductors,glasses,single crystals,and laser material were evaluated using nanoindentation.Various analysis procedures were compared such as Oliver&Pharr and nominal hardness-based methods,which require area function of the indenter,and other methods based on energy,displacement,contact depth,and contact stiffness,which do not require calibration of the indenter.Elastic recovery of the imprint by the Knoop indenter was also utilized to evaluate elastic moduli of brittle solids.Expressions relating HIT/Er and dimensionless nanoindentation variables(e.g.,the ratio of elastic work over total work and the ratio of permanent displacement over maximum displacement)are found to be nonlinear rather than linear for brittle solids.The plastic hardness Hp of brittle solids(except traditional glasses)extracted based on Er is found to be proportional to E_(r)√H_(IT). 展开更多
关键词 Brittle solids NANOINDENTATION Elastic modulus hardNESS Elastic recovery of Knoop imprint
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Impact of Hard Segment Structures on Fatigue Threshold of Casting Polyurethane Using Cutting Method
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作者 Guang-Zhi Jin Le-Hang Chen +4 位作者 Yu-Zhen Gong Peng Li Run-Guo Wang Fan-Zhu Li Yong-Lai Lu 《Chinese Journal of Polymer Science》 2025年第2期303-315,共13页
The fatigue resistance of casting polyurethane(CPU)is crucial in various sectors,such as construction,healthcare,and the automotive industry.Despite its importance,no studies have reported on the fatigue threshold of ... The fatigue resistance of casting polyurethane(CPU)is crucial in various sectors,such as construction,healthcare,and the automotive industry.Despite its importance,no studies have reported on the fatigue threshold of CPU.This study employed an advanced Intrinsic Strength Analyzer(ISA)to evaluate the fatigue threshold of CPUs,systematically exploring the effects of three types of isocyanates(PPDI,NDI,TDI)that contribute to hard segment structures based on the cutting method.Employing multiple advanced characterization techniques(XRD,TEM,DSC,AFM),the results indicate that PPDI-based polyurethane exhibits the highest fatigue threshold(182.89 J/m^(2))due to a highest phase separation and a densely packed spherulitic structure,although the hydrogen bonding degree is the lowest(48.3%).Conversely,NDI-based polyurethane,despite having the high hydrogen bonding degree(53.6%),exhibits moderate fatigue performance(122.52 J/m^(2)),likely due to a more scattered microstructure.TDI-based polyurethane,with the highest hydrogen bonding degree(59.1%)but absence of spherulitic structure,shows the lowest fatigue threshold(46.43 J/m^(2)).Compared to common rubbers(NR,NBR,EPDM,BR),the superior fatigue performance of CPU is attributed to its well-organized microstructure,polyurethane possesses a higher fatigue threshold due to its high phase separation degree and orderly and dense spherulitic structure which enhances energy dissipation and reduces crack propagation. 展开更多
关键词 Casting polyurethane Fatigue threshold Cutting method hard segment structures Materials characterization
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Strength and failure characteristics of hard rock containing a single structural plane under varied loading angles : A true triaxial investigation
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作者 XU Huai-sheng LI Shao-jun +3 位作者 XU Ding-ping LIU Xu-feng FENG Guang-liang WANG Zhao-feng 《Journal of Central South University》 2025年第5期1903-1921,共19页
The spatial relationship between structural planes and principal stresses significantly affects the mechanical properties of deep hard rock.This paper examines the effect of the loading angle under true triaxial compr... The spatial relationship between structural planes and principal stresses significantly affects the mechanical properties of deep hard rock.This paper examines the effect of the loading angle under true triaxial compression.While previous studies focused on the angleβbetween the maximum principal stress and the structural plane,the role of angleω,between the intermediate principal stress and the structural plane,is often overlooked.Utilizing artificially prefabricated granite specimens with a single non-penetrating structural plane,we set the loading angleβto range from 0°to 90°across seven groups,and assignedωvalues of 0°and 90°in two separate groups.The results show that the peak strength is negatively correlated withβup to 45°,beyond which it tends to stabilize.The angleωexerts a strengthening effect on the peak strength.Deformation mainly occurs post-peak,with the strain values ε_(1) and ε_(3) reaching levels 2−3 times higher than those in intact rock.The structural plane significantly influences failure mode whenω=0°,while failure localizes near the σ_(3) surface of the specimens whenω=90°.The findings enhance data on structural plane rocks under triaxial compression and inform theoretical research,excavation,and support design of rock structures. 展开更多
关键词 true triaxial compression hard rock structural plane loading angle STRENGTH failure characteristics
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