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1.
二维材料MXene纳米片由于具有较大的比表面积和较高的电子迁移率而受到广泛的关注。本文采用基于密度泛函理论的第一性原理计算,对单层MXene纳米片Ti2N电磁特性的过渡金属(Sc、V、Zr)掺杂效应进行了系统研究。结果表明,所有过渡金属掺杂体系结合能均为负值,结构均稳定;其中Ti2N-Sc体系的形成能为-2.242 eV,结构更易形成,且保持稳定;掺杂后Ti2N-Sc、Ti2N-Zr体系磁矩增大;此外,Ti2N-Sc体系中保留了较高的自旋极化率,达到84.9%,可预测该体系在自旋电子学中具有潜在的应用价值。  相似文献   
2.
In this study, we demonstrate that an Mn-doped ultrathin Ni-MOF nanosheet array on nickel foam (Mn0.1-Ni-MOF/NF) serves as a highly capacitive and stable supercapacitor positive electrode. The Mn0.1-Ni-MOF/NF shows an areal capacity of 6.48 C cm−2 (specific capacity C: 1178 C g−1) at 2 mA cm−2 in 6.0 m KOH, outperforming most reported MOF-based materials. More importantly, it possesses excellent cycle stability to maintain 80.6 % capacity after 5000 cycles. An asymmetric supercapacitor device utilizing Mn0.1-Ni-MOF/NF as the positive electrode and activated carbon as the negative electrode attains a high energy density of 39.6 Wh kg−1 at 143.8 Wkg−1 power density with a capacitance retention of 83.6 % after 5000 cycles.  相似文献   
3.
The looming global energy crisis and ever-increasing energy demands have catalyzed the development of renewable energy storage systems. In this regard, supercapacitors (SCs) have attracted widespread attention because of their advantageous attributes such as high power density, excellent cycle stability, and environmental friendliness. However, SCs exhibit low energy density and it is important to optimize electrode materials to improve the overall performance of these devices. Among the various electrode materials available, spinel nickel cobaltate (NiCo2O4) is particularly interesting because of its excellent theoretical capacitance. Based on the understanding that the performances of the electrode materials strongly depend on their morphologies and structures, in this study, we successfully synthesized NiCo2O4 nanosheets on Ni foam via a simple hydrothermal route followed by calcination. The structures and morphologies of the as-synthesized products were characterized by X-ray diffraction, scanning electron microscopy, and Brunauer-Emmett-Teller (BET) surface area analysis, and the results showed that they were uniformly distributed on the Ni foam support. The surface chemical states of the elements in the samples were identified by X-ray photoelectron spectroscopy. The as-synthesized NiCo2O4 products were then tested as cathode materials for supercapacitors in a traditional three-electrode system. The electrochemical performances of the NiCo2O4 electrode materials were studied and the area capacitance was found to be 1.26 C·cm-2 at a current density of 1 mA·cm-2. Furthermore, outstanding cycling stability with 97.6% retention of the initial discharge capacitance after 10000 cycles and excellent rate performance (67.5% capacitance retention with the current density from 1 to 14 mA·cm-2) were achieved. It was found that the Ni foam supporting the NiCo2O4 nanosheets increased the conductivity of the electrode materials. However, it is worth noting that the contribution of nickel foam to the areal capacitance of the electrode materials was almost zero during the charge and discharge processes. To further investigate the practical application of the as-synthesized NiCo2O4 nanosheets-based electrode, a device was assembled with the as-prepared samples as the positive electrode and active carbon (AC) as the negative electrode. The assembled supercapacitor showed energy densities of 0.14 and 0.09 Wh·cm-3 at 1.56 and 4.5 W·cm-3, respectively. Furthermore, it was able to maintain 95% of its initial specific capacitance after 10000 cycles. The excellent electrochemical performance of the NiCo2O4 nanosheets could be ascribed to their unique spatial structure composed of interconnected ultrathin nanosheets, which facilitated electron transportation and ion penetration, suggesting their potential applications as electrode materials for high performance supercapacitors. The present synthetic route can be extended to other ternary transition metal oxides/sulfides for future energy storage devices and systems.  相似文献   
4.
锡二硫族化合物可以通过改变硫和硒的含量来连续调控三元合金材料的带隙、载流子浓度等物理化学性质,在电子和光电子器件应用上具有巨大的潜力。本文采用化学气相沉积(CVD)技术可控地制备了不同元素组分的SnSxSe2-x(x=0,0.2,0.5,0.8,1.0,1.2,1.5,1.8,2.0)单晶纳米片。采用扫描电子显微镜(SEM)、原子力显微镜(AFM)、能量色散X射线光谱(EDS)、透射电子显微镜(TEM)以及拉曼光谱等手段对SnSxSe2-x纳米片进行了综合表征。结果表明本方法成功实现了元素百分比可调的SnSxSe2-x单晶纳米片的可控制备。重点研究了依赖于元素百分比的SnSxSe2-x的拉曼特征谱,实验结果与基于密度泛函理论(DFT)的第一性原理计算得到的SnSxSe2-x的拉曼仿真谱高度吻合,理论计算结果较好地诠释了实验拉曼光谱发生变化的原因。本研究提供了一种元素百分比可调的三元SnSxSe2-x单晶纳米片的可控制备方法,同时对锡二硫族化合物的明确、无损识别提供了方案。  相似文献   
5.
The electrocatalytic nitrate reduction reaction (NO3RR) enables the reduction of nitrate to ammonium ions under ambient conditions. It was considered as an alternative reaction for the production of ammonia (NH3) in recent years. In this paper, we report that the Fe doping CoS2 nanoarrays can effectively catalyze the formation of NH3 from nitrate (NO3) under ambient conditions. This is mainly due to the increase of the NO3 reaction active site by Fe doping and the porous nanostructure of the catalyst, which greatly improves the catalytic activity. Specifically, at −0.9 V vs. RHE, the NH3 yield rate (RNH3) of Fe−CoS2/CC is 17.8×10−2 mmol h−1 cm−2 with Faraday Efficiency (FE) of 88.93 %. Besides, such catalyst shows good durability and catalytic stability, which provides the possibility for the future application of electrocatalytic NH3 production.  相似文献   
6.
吴倩  高庆平  孙丽梅  郭焕美  台夕市  李丹  刘莉  凌崇益  孙旭平 《催化学报》2021,42(3):482-489,中插48-中插52
电化学水分解制氢作为重要的生产氢能的新能源技术,包括氢气析出反应(HER)和氧气析出反应(OER).然而,OER进行的是多步电子转移过程,动力学过程缓慢且过电位高,严重制约了电解水制氢的发展.因此开发低成本、高效稳定的非贵金属催化剂替代贵金属催化剂(RuO2,IrO2)来降低过电位,减少能源消耗十分必要.Ni3S2由于其高导电性、高活性、低成本等优点,具有作为贵金属催化剂替代品的广阔应用前景,但其OER性能仍需进一步提高.对已有的有效OER催化剂进行表界面调控是提高催化剂性能的一种有效策略.CeO2中的Ce3+和Ce4+价态之间可以灵活过渡,使其具有良好的电子/离子导电性、可逆的表面氧离子交换和较高的储氧能力.CeO2的多价性使其有机会与其它基质产生强烈的电子相互作用,良好的电子/离子导电性和较高的储氧能力是提高催化剂析氧活性的有利因素.因此,用CeO2对Ni3S2进行修饰是提高其析氧活性的有效途径.基于此,本文运用水热和电沉积相结合的方法将CeO2修饰到Ni3S2纳米片上,制备得到生长于泡沫镍上的Ni3S2-CeO2纳米片阵列(Ni3S2-CeO2/NF),并运用X射线粉末衍射(XRD)、扫描电镜(SEM)、透射电镜(TEM)、X射线光电子能谱(XPS)等手段进行了表征,以三电极系统测试了其电催化析氧性能及稳定性,并通过密度泛函理论计算进行了验证.XRD结果表明,复合材料中确实存在Ni3S2和CeO2.通过SEM发现,泡沫镍基底上均匀分布着Ni3S2纳米片阵列;电沉积CeO2后,Ni3S2-CeO2仍保持其纳米片特性,但表面变得粗糙.Ni3S2-CeO2的TEM结果也证实了纳米片结构的形成,高分辨率TEM图像清晰的显示出Ni3S2和CeO2之间具有明显的界面.XPS结果表明,Ni3S2-CeO2的Ni 2p的结合能与Ni3S2相比出现负位移.与纯CeO2的Ce 3d谱图相比,Ni3S2-CeO2杂化体系中Ce4+的比例明显增加,表明Ce的价态发生了重排,部分电子转移给了Ni元素.这些结果均说明Ni3S2与CeO2之间存在着较强的电子相互作用.相应的电催化测试结果显示,在1.0 M KOH中,当电流密度达到20 mA cm–2时,Ni3S2/NF需提供356 mV的过电位,Ni3S2-CeO2/NF只需264 mV的过电位,仅次于RuO2/NF.而且,Ni3S2-CeO2/NF在中性条件下也显示出了较理想的析氧活性.Ni3S2-CeO2/NF的Tafel斜率明显低于CeO2/NF和Ni3S2/NF,表明其具有良好的OER反应动力学.循环伏安法和计时电位法结果均表明,Ni3S2-CeO2/NF具有良好的电化学稳定性.电化学阻抗谱测试结果表明,与Ni3S2/NF和CeO2/NF相比,Ni3S2-CeO2/NF明显具有更小的半圆直径,说明其电荷转移阻抗更小,进一步表明CeO2的修饰有助于催化过程中电子的快速转移.在非法拉第区域的循环伏安扫描曲线以及拟合扫描速度对电容电流曲线结果显示,Ni3S2-CeO2/NF的最大电容值大于CeO2/NF和Ni3S2/NF,表明其暴露了更多的活性位点,具有更大的电化学活性表面积;而且,Ni3S2-CeO2/NF在400和500 mV时的电催化析氧转换频率明显高于Ni3S2/NF和CeO2/NF,进一步说明Ni3S2-CeO2/NF具有更高的本征催化活性.密度泛函理论计算表明,由于*OH,*O和*OOH与Ni3S2-CeO2中的Ni和Ce原子相互作用的存在,使得反应中间产物与Ni3S2-CeO2之间的结合强度较纯Ni3S2或CeO2强,使其显示出了更高的OER性能.在经过24 h连续电解后,SEM和TEM结果均表明,Ni3S2-CeO2/NF材料仍保持了其纳米片形貌.稳定性测试后的XPS结果表明,Ni 2p对应的峰强度降低,而与氧化镍物种对应的峰强度增强;S元素在Ni3S2-CeO2表面的信号强度明显降低.根据文献报道,在强烈的氧化环境下,过渡金属硫化物会部分转化为氧化物或氢氧化物,这通常被认为是OER过程的实际催化物种.  相似文献   
7.
We fabricated highly ordered ZnO nanosheet arrays on ITO substrates by adding KCl and ethylenediamine(EDA) through potentiostatic deposition, then produced a hierarchical structure of ZnO nanorods on the nanosheets by using secondary electrodeposition. Shell-core Sb2S3/ZnO nanostructures were prepared from ZnO nanosheets and ZnO nanorods on nanosheets by chemical bath deposition. The nanostructures were characterized using scanning electron microscopy (SEM) and X-ray diffraction (XRD), and their photoelectrochemical properties were investigated using ultraviolet-visible spectroscopy (UV-Vis) and photocurrent measurements. The shell-core Sb2S3/ZnO based on the hierarchical micronanostructure had higher photocurrent than did the shell-core Sb2S3/ZnO nanosheets. A hybrid solar cell was fabricated with a P3HT/Sb2S3/ZnO film as the photoactive layer. The P3HT/Sb2S3/ZnO hierarchical electrode exhibited an energy conversion efficiency as high as 0.81%.  相似文献   
8.
Precisely controlled crystal growth endows zeolites with special textural and catalytic properties. A nanosheet mordenite zeolite with a thickness of ca. 11 nm, named as MOR‐NS, has been prepared using a well‐designed gemini‐type amphiphilic surfactant as bifunctional structure‐directing agent (SDA). Its benzyl diquarternary ammonium cations structurally directed the formation of MOR topology, whereas the long and hydrophobic hexadecyl tailing group prevented the extensive crystal growth along b axis. This kind of orientated crystallization took place through the inorganic–organic interaction between silica species and SDA molecules present in the whole process. The thin MOR nanosheets, with highly exposed (010) planes and 8‐membered ring (MR) windows, exhibited a much improved ethylene selectivity (42.1 %) for methanol‐to‐olefin (MTO) reactions when compared with conventional bulk MOR crystals (3.3 %).  相似文献   
9.
An increasing trend toward integration of polymers in microelectronics and organic electronics has recently boosted research focusing in metal-polymer interfaces. These two materials differ vastly, with the former forming dense, crystalline, cohesive structures and the latter forming open structures bound together by weak van der Waals forces. As a result, there is dire need to assess their surface features (e.g., roughness) and correlate them with corresponding growth parameters, as metal-polymer interfaces are mainly determined by the preparation process. Here, we report a laboratory-based grazing-incidence small-angle x-ray scattering (GISAXS) study on distinct gold-polymer interfaces fabricated with different growth mechanisms, utilizing in-plane and oblique sputter geometries. GISAXS provided an improved analytic scheme for the buried surface in free-standing 2D gold-polymer nanosheets (with 19% porosity) revealing their fractal structure (Porod slope: ?1.71). Two quantitative approaches (Height-Height Correlation and Power Spectral Density functions) were used to describe rough surfaces characterized by Atomic Force Microscopy (AFM) in consort with GISAXS data; different correlation length dependencies on growth time were revealed for gold rough surfaces grown on bare and polymerized Si. The results are considered pertinent to interfacial nanoscience and engineering, enabling statistical data collection from large surface areas, in a fast and nondestructive manner.  相似文献   
10.
Bismuth oxybromide (BiOBr) nanosheets are exciting photocatalysts for microbial disinfection and organic dye degradation. However, it remains a great challenge to easily recycle these nanomaterials and improve their photocatalytic ability. Herein, we constructed a novel photocatalytic BiOBr@PAG gel containing BiOBr nanosheets and polyacrylamide gel (PAG), based on peroxydisulfate-induced polymerization reaction. The photocatalytic gel had equally distribution of BiOBr nanosheets on the surface, and could be easily recycled from water. More strikingly, the gel could also rapidly kill all tested pathogenic bacteria (i. e., Escherichia coli, Pseudomonas aeruginosa, and Staphylococcus aureus) under irradiation. Its disinfection activity is attributed to remarkable intracellular ROS production and oxidative cell damage. Furthermore, the gel had higher photocatalytic activity than BiOBr nanosheets alone during degradation of organic dyes. This study developed a novel strategy for preparation of easy-recycling and high-efficiency photocatalytic systems for practical application in environmental treatment and medicinal disinfection.  相似文献   
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