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Preparation, Characterization and Electroluminescence Studies ofCadmium Selenide Nanocrystals

机译:硒化镉纳米晶体的制备,表征和电致发光研究

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Nanoparticles of CdSe were prepared using chemical method by reacting cadmium acetate and sodiumselenosulfite in presence of capping agent mercaptoacetic acid (MAA). Two-propanol was added to this mixture, dropwise, till it becomes turbid. The precipitate was separated through centrifugation to get dry powder.TEM shows that the most particles are spherical with particle size of the order of few nanometres. The XRD patternindicates the hexagonal phase with wurtzite structure. The broadening of peaks tends to increase with increasing cappingagent concentration showing decrease in particle size in range of 3 nm to 4 nm. Absorption spectra of CdSe nanoparticlesindicated that the position of absorption peak shift to smaller wavelength as the capping agent concentration increases.Considering this as band-to-band absorption, their effective band gap was calculated and particle size was estimated usingeffective mass approximation, which is nearly same as obtained by XRD.The electroluminescence (EL) cells were prepared by placing CdSe nanoparticles between SnO2 coated conducting glassplate and aluminum foil. Alternating voltage of various frequencies was applied and EL brightness at different voltageswas measured and corresponding current was also recorded. It is seen that emission starts at a threshold voltage and thenincreases rapidly with increasing voltage. The lower threshold and higher brightness have been observed for smallernanoparticles. Linear relation between voltage and current indicates ohmic nature. Voltage vs brightness curve shows thatEL is produced by acceleration–collision mechanism.
机译:通过化学方法,在封端剂巯基乙酸(MAA)存在下,使乙酸镉与亚硒酸钠反应,制备了CdSe纳米颗粒。逐滴向该混合物中加入二丙醇,直至其变浑浊。通过离心分离沉淀物,得到干粉。TEM显示,大多数颗粒是球形的,粒径为几纳米的数量级。 XRD图谱表明具有纤锌矿结构的六方相。峰的增宽趋向于随着封端剂浓度的增加而增加,这表明粒径在3 nm至4 nm范围内减小。 CdSe纳米粒子的吸收光谱表明,随着封端剂浓度的增加,吸收峰的位置移至较小的波长,考虑到带间吸收,计算了它们的有效带隙,并使用有效质量近似法估算了粒径通过将CdSe纳米粒子放置在涂有SnO2的导电玻璃板和铝箔之间,制备了电致发光(EL)电池。施加各种频率的交流电压,并测量不同电压下的EL亮度,并记录相应的电流。可以看出,发射从阈值电压开始,然后随着电压的增加而迅速增加。对于较小的纳米颗粒,观察到较低的阈值和较高的亮度。电压和电流之间的线性关系表示欧姆性质。电压与亮度的关系曲线表明,EL是由加速碰撞机制产生的。

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