Synthesis and Analysis of Quantum DotsKaren S. Quaal1, .ppt
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1、Synthesis and Analysis of Quantum Dots Karen S. Quaal1, Justin LaRocque1, Shazmeen Mamdani1, Luke Nally1, Jennifer Z. Gillies2 and Daniel Landry2(1) Siena College, Loudonville, NY, (2) Evident Technologies,Upper division students synthesized quantum dot samples using modified literature procedures a
2、nd analyzed some of the optical properties between CdSe and ZnSe, and CdSe and shelled CdSe/ZnS Quantum Dots. The spectra (UV/VIS, Fluor.) obtained also constituted a model quantum system that was accessible to experimental and theoretical study by undergraduates. A method for analyzing the Cd/Zn ra
3、tio by Atomic Absorption (AA) Spectroscopy was developed and used to calculate the number of ZnS shells on the CdSe Nanoparticles. An alternative method for calculating the number of shells was also developed for use by students without access to AA instrumentation. A semiconductor is a material tha
4、t is neither a conductor nor an insulator of electric current. Nanocrystals, also referred to as Quantum Dots (QD), are the newest wave of semiconductor technology. The size of quantum dots ranges between 2-10 nm. The diameter of a QD is so small; it is actually smaller than the excited electron-hol
5、e Bohr radius. This results in a phenomenon known as quantum confinement. Quantum confinement leads to increased stress on the excited electron-hole relationship (exciton), which results in increased energy of the emitted photon. The smaller the dot, the less room there is for the exciton separation
6、, and the more energy required to form the exciton. The energy and wavelength of the emitted photon are directly related to the size of the particle and the respective degree of confinement. When a QD is placed under ultraviolet light fluorescence will occur which is a form of energy release. As the
7、 diameter of a CdSe QD increases, the color changes from blue to red. Inorganic materials of larger band gap coat nanocrystals (shelling) which improves confinement and increases the intensity of emitted fluorescence. A Zinc Sulfide (ZnS) shell added to the Cadmium Selenide core passivates the surfa
8、ce. This prevents the passive relaxation of the exciton and forces the exciton to relax via emission, increasing the intensity of the nanocrystals fluorescence.,Introduction,Abstract,Preparation of Amine-Capped Zinc Selenium (ZnSe) Nanoparticles-2 A synthetic procedure analogous to the one described
9、 above was used to synthesize ZnSe nanoparticles. Cadmium Selenide/Zinc Sulfide Core/Shell-2 Using standard airless techniques, Trioctylphosphine oxide (10g, TOPO) was degassed under vacuum for 30 minutes at 120C. The TOPO solution was cooled to 70C and 100 nmoles* of previously synthesized CdSe nan
10、oparticles in toluene was added to the TOPO. While under Nitrogen, the TOPO and CdSe solution was heated to 150C. In a glovebox, a 1000 fold excess of dimethylzinc (1M in heptane) and bis(trimethylsilyl) sulfide (TMS) in equal molar amounts were dissolved in a 4 fold excess of trioctylphosphine (TOP
11、). At 150, the solution prepared in the glovebox was added slowly into the reaction vessel using a dropping funnel. The temperature was raised to 170C and allowed to stir for one hour. An aliquot was removed using a syringe, quenched in toluene, and the UV spectrum obtained was compared to the CdSe
12、core spectrum. The solution was heated to 190C, and allowed to stir for 30 minutes, at which point another aliquot was removed and the UV spectrum obtained. After the growth of the nanocrystals/shell stabilized, as indicated by no additional change in the UV spectrum, the nanoparticles were isolated
13、 by precipitation using methanol (see selective precipitation procedure for amine capped CdSe nanoparticles). Determination of CdSe/ZnS Nanocrystal Shell Thickness (AA method) Crash and Suspend Process: Approximately 1 micromole* of a CdSe/ZnS in toluene nanocrystal sample was added to a glass centr
14、ifuge tube. The centrifuge tube was filled 3/4 full with methanol. The tube was shaken, and put in ice for twenty minutes. After icing, the tube was placed in a centrifuge for twenty minutes. When removed from the centrifuge the liquid was clear and crystals were in the bottom of the tube. If the li
15、quid is not clear, repeat the icing and centrifuge procedure. The liquid was decanted and a minimum of toluene was added in order to re-suspend crystals. A sonicator was used to aid in re-suspension. Methanol was added, and procedure was repeated two additional times. * - Moles based on concentratio
16、n determined by way of Beers Law, by UV-VIS spectrum and molar absorptivity of CdSe available on website: . The molecular weight of the dot can be determined by dividing the diameter of the dot by the bond length of Cd-Se (.36nm). This result (x) is then inserted in the following equation in order t
17、o find the number of CdSe units in the dot: (4/3)(x/2)3. The result is multiplied by the molecular mass of CdSe (191.371 g/mole) to obtain the molecular mass of the dot. Constant Weight Process: After the final centrifugation, the supernatant was removed, filter paper was secured over a centrifuge t
18、ube and a small hole was punched in the filter paper to allow airflow. The centrifuge tube was then placed under vacuum at 70C for 1 hour. The tube was allowed to cool in a desiccator then weighed. The filter paper was replaced and the tube was dried in a vacuum at 70C for an additional hour. This p
19、rocess was repeated until a constant weight was obtained. Digestion Process: High purity concentrated nitric acid (2 mL) was added to the centrifuge tube containing the dry crystals. This solution was allowed to sit overnight. High purity concentrated hydrochloric acid (5-6 drops) was added to a cen
20、trifuge tube which was then placed in a hot water bath and left until the solution was clear and contained no solids. The solution was then diluted for AA determination of cadmium and zinc concentrations. After the solution was removed from the centrifuge tube, the tube was dried and weighed in orde
21、r to determine the constant mass of the dried crystals.Quantum Confinement:4,6 Several quantum mechanical models were used to predict the size of the Q.D. The best agreement With TEM values were found with the strong confinement model. E1s1s = Eg + 2 (ab/adot)2 Ry* - 1.786 (ab/adot) Ry* - 0.248 Ry*
22、Where E1S1S = Energy calculated from UV/VIS spectrum Eg= bang gap (CdSe= 1.84 eV) ab= exciton Bohr radius (CdSe= 4.9 nm) adot= radius of the Q.D Ry* = Rydberg constant (CdSe= 0.016 eV),Table 1: CdSe Spectral Data:,Procedures,CdSe(amine capped)-3,2 Hexadecylamine (6 grams, 24.84 mmoles) was degassed
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