锂硫电池的实际应用仍受制于一些挑战,包括氧化还原动力学缓慢和由此引发的穿梭效应等.为解决这些问题,我们巧妙合成了一种由FeS_(2)和分等级多孔碳结构(PCF)组成的隔膜修饰层.这种新颖的结构能同时实现对多硫化锂的物理阻挡与化学电催...锂硫电池的实际应用仍受制于一些挑战,包括氧化还原动力学缓慢和由此引发的穿梭效应等.为解决这些问题,我们巧妙合成了一种由FeS_(2)和分等级多孔碳结构(PCF)组成的隔膜修饰层.这种新颖的结构能同时实现对多硫化锂的物理阻挡与化学电催化效应.多硫化锂扩散实验证实PCF修饰的隔膜能够阻挡多硫化锂的渗透,而飞行时间二次离子质谱表明FeS_(2)能催化多硫化锂快速转化.因此,修饰后的锂硫电池表现出优异的倍率性能(5 C时比容量达764 mA h g^(-1))及显著的长循环稳定性(1 C时循环500次后比容量为698 mA h g^(-1)).值得注意的是,修饰后的锂硫电池最高面积容量为7.52 mA h cm^(-2),并且能够在较宽温域(-20至60°C)保持高循环稳定性.本研究为隔膜修饰层的高效应用提供了有价值的见解.展开更多
The purpose of this article is to extend the theory of circulant matrix to general ideal matrix, and to construct more general NTRU cryptosystem combined with the φ-cyclic code. To understand our construction, ...The purpose of this article is to extend the theory of circulant matrix to general ideal matrix, and to construct more general NTRU cryptosystem combined with the φ-cyclic code. To understand our construction, first we discuss a more general form of the ordinary cyclic code, namely φ-cyclic code, which firstly appeared in [1] and [2], thus we give a more generalized NTRUEncrypt by replacing finite field with real number field R.展开更多
In this paper, we conclude five kinds of methods for construction of the regular low-density parity matrix H and three kinds of methods for the construction of irregular low-density parity-check matrix H. Through the ...In this paper, we conclude five kinds of methods for construction of the regular low-density parity matrix H and three kinds of methods for the construction of irregular low-density parity-check matrix H. Through the analysis of the code rate and parameters of these eight kinds of structures, we find that the construction of low-density parity-check matrix tends to be more flexible and the parameter variability is enhanced. We propose that the current development cost should be lower with the progress of electronic technology and we need research on more practical Low-Density Parity-Check Codes (LDPC). Combined with the application of the quantum distribution key, we urgently need to explore the research direction of relevant theories and technologies of LDPC codes in other fields of quantum information in the future.展开更多
基金financially supported by the National Natural Science Foundation of China (22005003)the Natural Science Research Project of Anhui Province Education Department (2022AH030046 and 2022AH050323)+2 种基金the Young Scholars of the Introduction and Education of Talents in Anhui Provincethe Top Young Talents of Anhui University of Technologythe Scientific Research Foundation of Anhui University of Technology for Talent Introduction。
文摘锂硫电池的实际应用仍受制于一些挑战,包括氧化还原动力学缓慢和由此引发的穿梭效应等.为解决这些问题,我们巧妙合成了一种由FeS_(2)和分等级多孔碳结构(PCF)组成的隔膜修饰层.这种新颖的结构能同时实现对多硫化锂的物理阻挡与化学电催化效应.多硫化锂扩散实验证实PCF修饰的隔膜能够阻挡多硫化锂的渗透,而飞行时间二次离子质谱表明FeS_(2)能催化多硫化锂快速转化.因此,修饰后的锂硫电池表现出优异的倍率性能(5 C时比容量达764 mA h g^(-1))及显著的长循环稳定性(1 C时循环500次后比容量为698 mA h g^(-1)).值得注意的是,修饰后的锂硫电池最高面积容量为7.52 mA h cm^(-2),并且能够在较宽温域(-20至60°C)保持高循环稳定性.本研究为隔膜修饰层的高效应用提供了有价值的见解.
基金supported by the National Natural Science Foundation of China(81870905 and U20A20358)the Chinese Academy of Medical Sciences Innovation Fund for Medical Sciences(2019-I2M-5-029)the Capital's Funds for Health Improvement and Research(2020-1-2041).
基金partly supported by the Natural Science Foundation of Liaoning Province(20170540642)the General Project of Scientific Research of the Education Department of Liaoning Province(L2015359)the Key Project of the Qinghai Qilian Mountain Nature Reserve Administration(QHTX-2021-006)。
文摘The purpose of this article is to extend the theory of circulant matrix to general ideal matrix, and to construct more general NTRU cryptosystem combined with the φ-cyclic code. To understand our construction, first we discuss a more general form of the ordinary cyclic code, namely φ-cyclic code, which firstly appeared in [1] and [2], thus we give a more generalized NTRUEncrypt by replacing finite field with real number field R.
文摘In this paper, we conclude five kinds of methods for construction of the regular low-density parity matrix H and three kinds of methods for the construction of irregular low-density parity-check matrix H. Through the analysis of the code rate and parameters of these eight kinds of structures, we find that the construction of low-density parity-check matrix tends to be more flexible and the parameter variability is enhanced. We propose that the current development cost should be lower with the progress of electronic technology and we need research on more practical Low-Density Parity-Check Codes (LDPC). Combined with the application of the quantum distribution key, we urgently need to explore the research direction of relevant theories and technologies of LDPC codes in other fields of quantum information in the future.