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1.
对100 kHz运转的腔倒空薄片激光器的输出特性进行了理论和实验研究。首先建立起腔倒空薄片激光器的速率方程理论模型,模型中考虑了单位时间谐振腔中新增的自发辐射光子数,对其占总自发辐射光子数的比例进行了分析,并结合一些参数进行了仿真。进一步搭建了重复频率为100 kHz的腔倒空薄片激光器实验装置,获得了平均功率为253 W的纳秒激光脉冲输出,光光效率约为35.2%,脉冲宽度为10.4 ns,单脉冲能量为2.53 mJ,脉冲的峰值功率超过了200 kW,x和y方向的光束质量M2分别为9.77和9.27。针对腔倒空调Q的动力学稳定性问题,研究了普克尔盒开关时间对输出平均功率和输出脉冲稳定性的影响,实验中观察到了倍周期分岔和确定性混沌现象,从理论上对这个现象进行了仿真分析,仿真结果可与实验结果相符。 相似文献
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氢能的引入能有效提升配电网的供电可靠性,而电解水制氢是实现低碳转型的关键技术,开发高效的电解水催化剂势在必行。过渡金属氧化物储量大、催化活性高,是具有广阔应用前景的析氧反应催化剂。本文通过射频等离子体处理制备石墨烯上负载Co3O4析氧催化剂,XRD、Raman和XPS测试结果显示,二维结构石墨烯的引入加速表面电子迁移,增大了反应面积。等离子体处理促进了纳米粒子在石墨烯上的负载,利用等离子体刻蚀作用在催化剂表面制造出大量碳结构缺陷和氧空位结构,改善了活性位点分布,有效调控Co3O4电子结构,提高析氧催化活性。电化学测试表明,本文中合成的Co3O4@rGO在电流密度为50 mA·cm-2时的过电位为410 mV,动力学反应速率较快,表现出优于商业IrO2的析氧催化活性。 相似文献
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通过简单的溶剂热法成功制备出了g-C3N4-W18O49复合光催化剂,采用XRD、SEM、TEM以及PL对所得催化剂的物相结构及形貌和光学性能进行了表征,通过降解甲基橙和光解水产氢实验研究所得催化剂的催化性能及其催化机理.由实验可知,W18O49的含量为50;时所得g-C3N4-W18O49复合光催化剂的降解性能最好,其降解率比纯g-C3N4纳米片提高48;;为进一步研究复合光催化剂的电子-空穴传输机理,我们又进行了光解水制氢实验.结果表明:单一的W18O49无产氢活性,它的复合明显降低了g-C3N4的产氢速率,说明复合结构中光生电子是从g-C3N4传递到了W18O49,表现出明显的Ⅱ型异质结复合特征,而不是部分文献所提出的Z型方式. 相似文献
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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
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AgGaGe5 Se12、AgGaGeS4非线性晶体在中远红外激光具有良好的应用前景.合成高纯多晶是制备可器件化单晶元件的关键.但S、Se易挥发、高温下饱和蒸气压高,易导致石英坩埚的爆炸,组分偏离化学计量比.为此,本文采用一种新型的高压辅助法合成出大尺寸高纯的多晶原料,解决了石英坩埚爆炸和组份偏离问题,并在此基础上进行了单晶的生长过程.多晶X射线粉末衍射测试结果与模拟图谱或者标准PDF卡片一致;X射线荧光光谱分析得到各元素百分含量非常接近化学计量比,AgGaGe5 Se12中Ag、Ga、Ge、Se各占7.86;、5.08;、23.80;、63.26;,AgGaGeS4中Ag、Ga、Ge、S各占28.22;、18.24;、19.52;、34.02;;单晶透过率测试得到AgGaGe5 Se12、AgGaGeS4透过率分别为60;、70;,证明此方法制备的AgGaGe5 Se12、AgGaGeS4晶体性能优良,展现了该方法在多晶合成的应用潜力. 相似文献
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采用水热法首先制备稀土Nd3+掺杂介孔TiO2,进而复合氧化石墨烯(GO)合成了系列Nd3+-介孔TiO2/GO复合材料.通过X射线衍射(XRD)、透射电镜(TEM)、孔结构分析(BJH与BET)、X射线光电子能谱(XPS)和紫外-可见漫反射(UV-vis)等测试手段对样品的微观结构、形貌、样品表面各元素价态及谱学性质进行表征,并以甲基橙模拟污染物测试其光催化性能.结果表明,所制样品均为锐钛矿结构TiO2,晶粒尺寸在3~4 nm之间;从UV-vis测试结果分析可知,与Nd3+-介孔TiO2和TiO2/GO相比,稀土Nd3+和GO的协同效应更能有效减小TiO2半导体禁带宽度,从而增加其对可见光的吸收.此外,不同光照射下光催化降解甲基橙的实验表明,所制备样品均有较强的紫外及可见光光催化性能,其中系列Nd3+-介孔TiO2/GO复合体系可见光光催化性能更为显著. 相似文献
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Jia Yan Ting Wang Siyao Qiu Zhilong Song Wangqin Zhu Xianhu Liu Jiabiao Lian Chenghua Sun Huaming Li 《Journal of Energy Chemistry》2022,(2)
Two-dimensional carbon nitride(2 D-C3 N4)nanosheets are promising materials in photocatalytic water splitting,but still suffer from easy agglomeration and fast photogene rated electron-hole pairs recombination.To tackle this issue,herein,a hierarchical Nb2 O5/2 D-C3 N4 heterostructure is precisely constructed and the built-in electric field between Nb2O5 and 2 D-C3 N4 can provide the driving force to separate/transfer the charge carriers efficiently.Moreover,the strongly Lewis acidic Nb2O5 can adsorb TEOA molecules on its surface at locally high concentrations to facilitate the oxidation reaction kinetics under irradiation,resulting in efficient photogene rated electrons-holes separation and exceptional photocatalytic hydrogen evolution.As expected,the champion Nb2O5/2 D-C3N4 heterostructure achieves an exceptional H2 evolution rate of 31.6 mmol g-1 h-1,which is 213.6 times and 4.3 times higher than that of pristine Nb2O5 and2 D-C3N4,respectively.Moreover,the champion heterostructure possesses a high apparent quantum efficiency(AQE)of 45.08%atλ=405 nm and superior cycling stability.Furthermore,a possible photocatalytic mechanism of the energy band alignment at the hetero-interface is proposed based on the systematical characterizations accompanied by density functional theory(DFT)calculations.This work paves the way for the precise construction of a high-quality heterostructured photocatalyst with efficient charge separation to boost hydrogen production. 相似文献
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