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排序方式: 共有86条查询结果,搜索用时 16 毫秒
1.
钾镁氯化物(硫酸盐)与脲、水体系的溶度研究 总被引:7,自引:0,他引:7
报导了KCl-MgCl2-CO(NH2)2-H2O和K2SO4-MgSO4-CO(NH2)2-H2O两个四元体系在25℃时的溶度及其饱和溶液的折光率、密度,相应的溶度图和组成-折光率、组成-密度图.前一体系中形成3个三元化合物:MgCl2·4CO(NH2)2·2H2O、MgCl2·CO(NH2)2·4H2O和KCl·MgCl2·6H2O溶度盐份图由9支共饱线、4个四元无变点组成.四元体系的水量图、性质-组成图有类似的变化.后一体系中有2个异成份溶解化合物MgSO4·CO(NH2)2·2H2O和K2SO4·MgSO4·6H2O形成,溶度等温图由7支双饱溶度线、3个四元无变点组成.对两个体系相图的相似性和差异点进行了讨论. 相似文献
2.
Aryltellurenyl iodides react with Reformatsky reagents in dry THF at room temperature rapidly to produce α-aryltelluro esters in good yields. 相似文献
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4.
Shi‐Zhao Kang Yikai Yang Zhizhen Xu 《Journal of Dispersion Science and Technology》2013,34(4):521-524
CdS nanoparticles were formed on the surface of silica microspheres by the improved layer‐by‐layer self‐assembled technique. High‐resolution electron microscope (HRTEM) image and energy dispersive x‐ray analysis (EDX) confirmed formation of a quasi‐continuous CdS nanoparticles film on the silica microspheres. The results of UV‐vis and fluorescence spectra display that the spherical silica surface has a great effect on the photoluminescence of the loaded CdS nanoparticles. In contrast to the CdS nanoparticles powder, the composite can exhibit the emission ascribed to the band gap transition when the CdS nanoparticles film is relatively thick. This phenomenon is probably due to an enhancement of the crystallinity of CdS nanoparticles induced by the silica spheres. 相似文献
5.
Shi‐Zhao Kang Zhizhen Xu Yixin Song 《Journal of Dispersion Science and Technology》2013,34(6):857-859
In this article, TiO2 nanorods (aspect ratio >20) were prepared through a polyol process and doped with metal ions (Cu2+, Ni2+, Fe3+, and Cr3+). Compared with TiO2 nanoparticles, the TiO2 nanorods displayed relatively higher photocatalytic activity for the degradation of copper sulfophthalocyanine. Moreover, the photocatalytic activity was greatly enhanced when the metal ions were doped in the TiO2 nanorods. 相似文献
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Single-unit-cell thick Mn(3)O(4) sheets were synthesized in an aqueous solution at room temperature. These nanosheets have a 001 orientation and are terminated at the Mn(2)O(4) atomic layer. Due to the huge shape anisotropy, they demonstrated lower T(C) and much greater coercivity than those of bulk Mn(3)O(4), respectively. 相似文献
8.
Ping Ding Xinhua Pan Zhizhen Ye Haiping He Honghai Zhang Wei Chen Chongyu Zhu Jingyun Huang 《Applied Physics A: Materials Science & Processing》2013,112(4):1051-1055
High-quality ZnO thin films were grown on a-plane sapphire substrates by plasma-assisted molecular beam epitaxy. X-ray diffraction and transmission electron microscopy reveal that the ZnO films have high structural quality and an atomically sharp ZnO/Al2O3 interface. The full width at half maximum values of the 0002 and $30\bar{3}2$ ZnO ω-rocking curves are 467.8 and 813.5 arc sec for a 600 nm thick ZnO film. A screw dislocation density of 4.35×108 cm?2 and an edge dislocation density of 3.38×109 cm?2 are estimated by X-ray diffraction. The surface of the ZnO epilayers contains hexagonal pits, which can be observed in the Zn-polar ZnO. The films have a resistivity of 0.119 Ω?cm, an electron concentration of 6.85×1017 cm?3, and a mobility of 76.5 cm2?V?1?s?1 at room temperature. Low temperature photoluminescence measurements show good optical properties comparable to ZnO single crystals. 相似文献
9.
黄志真 《浙江大学学报(理学版)》1998,25(3):59-61
在钯、碳酸钾及相转移催化剂的存在下, 芳卤与亚磷酸二烷酯在间二甲苯中共热可顺利发生交叉偶
联反应, 提供了芳基膦酸二烷酯的简便合成法. 相似文献
10.
We have demonstrated the crystalline ZnO-Al2O3 core-shell nanowire structure by atomic layer deposition (ALD) at a temperature 100 °C. The core-shell structure could have potential applications in the fabrication of ZnO field effect transistor. After dissolving the ZnO core, shape defined, rigid and robust crystalline Al2O3 shelled nanostructures have been fabricated. Nanowire ZnO nanostructures have been replicated by alumina shell. This is one of the most effective techniques for producing core-shell or shell/hollowed nanostructures of any desired objects. The Al2O3 shelled nanostructures could have potential applications as space confined nanoreactors, drug delivery, nanofluidic channels and optical transmitting. 相似文献