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991.
采用高温固相法成功制备了不同Na+掺杂浓度的Li1-xNaxNi1/3Co1/3Mn1/3O2锂离子电池正极材料,探究了Na元素掺杂对层状氧化物正极材料结构以及电化学性能的影响。通过X射线粉末衍射仪和扫描电子显微镜表征了材料的结构和形貌,结果表明,当x≤0.3时,样品不会出现其它杂相;当x>0.3时,样品中会出现NaNi1/3Co1/3Mn1/3O2的杂相。同时随着掺杂浓度的增加,样品的阳离子混排度逐渐增加。电化学性能结果表明,少量Na+的掺入可以提高LiNi1/3Co1/3Mn1/3O2在0.2C,0.5C下的放电比容量并增强其循环稳定性,但会损坏材料的倍率性能。 相似文献
992.
为了探究稀土离子掺杂铝硅酸盐的光温特性,本文采用燃烧合成法制备了系列荧光粉材料Ca1-3x/2Al2Si2O8:xEu3+。X射线衍射结果表明掺杂Eu3+离子不会改变基质CaAl2Si2O8的晶体结构。荧光光谱结果表明该荧光粉在近紫外光区域具有较强吸收,当被波长为393 nm的近紫外光激发后,其最大特征发射峰为611 nm,且Eu3+离子的最佳掺杂浓度为0.05。利用上升时间测温法研究了CaAl2Si2O8:Eu3+荧光粉的光温传感特性,结果表明:随着Eu3+掺杂浓度的增加,上升时间单调递减,但当掺杂掺杂超过0.100时就会发生淬灭。Ca0.985Al2Si2O8:0.01Eu3+的相对灵敏度随温度的升高先增大后减小,并在520 K时达到最大值(0.024 K-1)。上述研究表明该荧光粉具备优异的温度传感性能,在测温领域具有广泛的应用前景。 相似文献
993.
以信息化、智能化为特征的数字化时代的到来推动了桥梁工程技术的发展与创新,有必要将云计算、大数据、人工智能、3D打印、机器人等战略性新兴产业技术与桥梁工程相融合,从智能设计、智能施工、智能运维等多个维度,推进桥梁工业化、数字化、智能化升级。本文从桥梁信息化、智能检测与安全运维、智能防灾减灾、智能材料等方面,综述了2020年该领域前沿技术和重要成果,总结了研究热点与前景展望。分析表明:BIM技术可以提升桥梁正向设计精细化水平、施工过程控制和管理准确化程度;无人机、机器人等智能检测技术与机器学习、卷积神经网络等人工智能技术提高了桥梁检测的精度和效率;高性能智能材料的应用促进了桥梁结构的自感知性、自适应性、自调节性和自诊断性;基于人工智能的自然灾害监测与预警为桥梁智能防灾减灾提供了新的发展思路。未来应将人工智能技术深度融合桥梁设计、建造和养护的全生命周期,顺应信息化、智能化的发展趋势,实现桥梁强国梦。 相似文献
994.
995.
Antimicrobial resistance has long been viewed as a lethal threat to global health. Despite the availability of a wide range of antibacterial medicines all around the world, organisms have evolved a resistance mechanism to these therapies. As a result, a scenario has emerged requiring the development of effective antibacterial drugs/agents. In this article, we exclusively highlight a significant finding reported by Zbořil and associates (Adv. Sci. 2021, 2003090). The authors construct a covalently bounded silver-cyanographene (GCN/Ag) with the antibacterial activity of 30 fold higher than that of free Ag ions or typical Ag nanoparticles (AgNPs). Ascribed to the strong covalent bond between nitrile and Ag, an immense cytocompatibility is shown by the GCN/Ag towards healthy human cells with a minute leaching of Ag ions. Firm interactions between the microbial membrane and the GCN/Ag are confirmed by molecular dynamics simulations, which rule out the dependence of antibacterial activity upon the Ag ions alone. Thus, this study furnishes ample scope to unfold next-generation hybrid antimicrobial drugs to confront infections arising from drug and Ag-resistant bacterial strains. 相似文献
996.
Yan Cui Zequan Zeng Jianfeng Zheng Zhanggen Huang Jieyang Yang 《Frontiers of Chemical Science and Engineering》2021,15(5):1125
To realize the utilization of visible light and improve the photocatalytic efficiency of organic pollutant degradation in wastewater, a nitrogen-doped titanium-carbon composite (N-TiO2/AC) prepared by sol-gel methods was applied in the photodegradation of phenol assisted by persulfate under visible light irradiation (named N-TiO2/AC/PS/VIS). The results show that a synergistic effect exists between visible-light photocatalysis and persulfate activation. Compared with TiO2/PS/VIS, the phenol degradation rate was found to be observably improved by 65% in the N-TiO2/AC/PS/VIS system. This significant increase in degradation rate was mainly attributed to the following two factors: 1) The N and C doping can change the crystal structure of TiO2, which extends the TiO2 absorption wavelength range to the visible light region. 2) As an electron acceptor, PS can not only prevent electrons and holes from recombining with each other but can also generate strong oxidizing radicals such as ∙SO4– and ∙OH to accelerate the reaction dynamics. The process of phenol degradation was found to be consistent with the Langmuir pseudo-first-order kinetic model with an apparent rate constant k of 1.73 min–1. The N-TiO2/AC/PS/VIS process was proven to be a facile method for pollutant degradation with high pH adaptability, excellent visible-light utilization and good application prospects. 相似文献
997.
传统的静电纺丝法使用单一的毛细管状喷头喷丝,通常用于制备实心且表面光滑单一组分的纳米纤维,无法得到具有多种功能性结构的复合材料,应用范围较窄。以酞酸丁酯和尿素为原料,采用同轴静电纺丝法成功制备了TiO2/g-C3N4复合材料,并用X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)、紫外可见漫反射光谱(UV-vis DRS)、场发射扫描电子显微镜(SEM)和Brunauer-Emmett-Teller (BET)分析对样品进行了表征,通过光催化降解亚甲基蓝溶液(MB)研究了不同g-C3N4添加量对TiO2/g-C3N4复合材料光催化性能的影响。实验结果表明,采用同轴静电纺丝法结合500℃煅烧工艺成功制备了大比表面积及高光催化性能的TiO2/g-C3N4复合材料。当g-C3N4添加量为0.15 g时,TiO2/g-C3N4复合材料对亚甲基蓝溶液(MB)的光催化降解效率可达93.8%,且经过5次重复实验后降解率仍可达80%以上。 相似文献
998.
Jie Yang Alejandro Gallegos Cheng Lian Shengwei Deng Honglai Liu Jianzhong Wu 《中国化学工程学报》2021,29(3):145-152
Understanding the microscopic structure and thermodynamic properties of electrode/electrolyte interfaces is central to the rational design of electric-double-layer capacitors (EDLCs). Whereas practical applications often entail electrodes with complicated pore structures, theoretical studies are mostly restricted to EDLCs of simple geometry such as planar or slit pores ignoring the curvature effects of the electrode surface. Significant gaps exist regarding the EDLC performance and the interfacial structure. Herein the classical density functional theory (CDFT) is used to study the capacitance and interfacial behavior of spherical electric double layers within a coarse-grained model. The capacitive performance is associated with electrode curvature, surface potential, and electrolyte concentration and can be correlated with a regression-tree (RT) model. The combination of CDFT with machine-learning methods provides a promising quantitative framework useful for the computational screening of porous electrodes and novel electrolytes. 相似文献
999.
Bubble/Slurry bubble column reactors(BCR/SBCR) are intensively used as multiphase reactors for a wide range of application in the chemical, biochemical and petrochemical industries. Most of these applications involve complicate gas–liquid/gas–liquid–solid flow behavior and exothermic process, thus it is necessary to equip the BCR/SBCR with heat exchanger tubes to remove the heat and govern the performance of the reactor. Amounts of experimental and numerical studies have been carried out to describe the phenomena taking place in BCR/SBCRs with heat exchanger tubes. Unfortunately, little effort has been put on reviewing the experiments and simulations for examining the effect of internals on the performance and hydrodynamics of BCR/SBCR. The objective of this work is to give a state-of-the-art review of the literature on the effects of heat exchanger tubes with different types and configurations on flow behavior and heat/mass transfer, then provide adequate information and scientific basis for the design and the development of heat exchanger tubes in BCR/SBCR, ultimately provide reasonable suggestions for better comprehend the performance of different heat exchanger tubes on hydrodynamics. 相似文献
1000.
Muhammad Khurram Tufail Niaz Ahmad Le Yang Lei Zhou Muhammad Adnan Naseer Renjie Chen Wen Yang 《中国化学工程学报》2021,39(11):16-36
The development of an inorganic electrochemical stable solid-state electrolyte is essentially responsible for future state-of-the-art all-solid-state lithium batteries (ASSLBs). Because of their advantages in safety, working temperature, high energy density, and packaging, ASSLBs can develop an ideal energy storage system for modern electric vehicles (EVs). A solid electrolyte (SE) model must have an economical synthesis approach, exhibit electrochemical and chemical stability, high ionic conductivity, and low interfacial resistance. Owing to its highest conductivity of 17 mS·cm-1, and deformability, the sulfide-based Li7P3S11 solid electrolyte is a promising contender for the high-performance bulk type of ASSLBs. Herein, we present a current glimpse of the progress of synthetic procedures, structural aspects, and ionic conductivity improvement strategies. Structural elucidation and mechanistic approaches have been extensively discussed by using various characterization techniques. The chemical stability of Li7P3S11 could be enhanced via oxide doping, and hard and soft acid/base (HSAB) concepts are also discussed. The issues to be undertaken for designing the ideal solid electrolytes, interfacial challenges, and high energy density have been discoursed. This review aims to provide a bird's eye view of the recent development of Li7P3S11-based solid-state electrolyte applications and explore the strategies for designing new solid electrolytes with a target-oriented approach to enhance the efficiency of high energy density all-solid-state lithium batteries. 相似文献