200 resultados para poly(glycidyl methacrylate) RAFT
Quantifying the effectiveness of SiO2/Au light trapping nanoshells for thin film poly-Si solar cells
Resumo:
In order to enhance light absorption of thin film poly-crystalline silicon (TF poly-Si) solar cells over a broad spectral range, and quantify the effectiveness of nanoshell light trapping structure over the full solar spectrum in theory, the effective photon trapping flux (EPTF) and effective photon trapping efficiency (EPTE) were firstly proposed by considering both the external quantum efficiency of TF poly-Si solar cell and scattering properties of light trapping structures. The EPTF, EPTE and scattering spectrum exhibit different behaviors depending on the geometric size and density of nanoshells that form the light trapping layer. With an optimum size and density of SiO2/Au nanoshell light trapping layer, the EPTE could reach up to 40% due to the enhancement of light trapping over a broad spectral range, especially from 500 to 800 nm.
Resumo:
Poly(3,4-ethylenedioxythiopliene):poly(styrene sulfonate) (PEDOT:PSS) films have been electrochemically polymerized in situ on ITO glass substrate in boron trifluoride diethyl etherate electrolyte (BFEE). Cyclic voltammograms show good redox activity and stability of the PEDOT films. These films had been directly used to fabricate organic-inorganic hybrid solar cells with the structure of ITO/PEDOT/ZnO:MDMC-PPV/Al. The solar cells made of electrochemically polymerized films exhibit higher energy conversion efficiencies compared with that prepared by the spin-coating method, and the highest value is 0.33%. This in-situ electropolymerized method effectively simplifies fabricating procedures and may blaze a facile and economical route for producing high-efficiency solar cells.
Resumo:
可逆加成裂解链转移(RAFT)聚合已经成为高分子合成的研究热点之一,这是因为它同时具有自由基聚合和活性聚合的优点,能够有效控制分子量和分子量分布,反应条件温和,可用于本体、溶液、悬浮、乳液等体系,单体范围广,能够合成嵌段、接枝、支化等复杂结构的聚合物。在已经报道的丙烯腈RAFT聚合研究中,所得聚合物具有较窄的分子量分布,分子量接近理论预测值,然而,最高值只达到5000左右。本论文的研究工作正是从这一个基本问题展开的。 1. 利用三硫代碳酸二苄基酯代替二硫代羧酸酯作为链转移剂,降低中间态自由基断裂反应的活化能,保证活性态与休眠态之间的平衡以一较快的交换速率进行,聚合结果表明,在文献报道的反应条件下,聚合速率有了明显的提高,同时聚合以一种可控的方式进行,所得聚合物分子量最高达8000,且分子量分布较窄。 2. 将二硫代苯甲酸异丙腈酯调控的丙烯腈聚合实验参数优化,提高反应温度降低缓聚,选择碳酸乙二酯作为溶剂减小链转移反应,导致中间态自由基断裂反应的效率大大提高,以一种可控/活性自由基聚合方式进行,首次合成了分子量高达32800、分子量分布指数小于1.3的聚丙烯腈。 3. 由于RAFT试剂很难制备和长期保存,当以二硫代物作为替代的调控试剂, 偶氮二异丁腈作为引发剂,可以在“原位”合成RAFT聚合所需的链转移剂,直接调控丙烯腈的自由基聚合,得到高分子量、分子量分布指数比较小的丙烯腈均聚物和共聚物。 4. 将不对称的双乙烯基单体作为支化剂引入到丙烯腈聚合体系中,同时采用RAFT技术来抑制交联反应,单体转化率增加至较高值而不形成凝胶,1H NMR和凝胶渗透色谱证明了合成的聚合物具有支化结构,并且聚合物的特性粘数低于相近分子量的线性聚合物的对应值。
Resumo:
Micromachined comb-drive electrostatic resonators with folded-cantilever beams were designed and fabricated. A combination of Rayleigh's method and finite-element analysis was used to calculate the resonant frequency drift as we adjusted the device geometry and material parameters. Three micromachined lateral resonant resonators with different beam widths were fabricated. Their resonant frequencies were experimentally measured to be 64.5,147.2, and 255.5kHz, respectively, which are in good agreement with the simulated resonant frequency. It is shown that an improved frequency performance could be obtained on the poly 3C-SiC based device structural material systems with high Young's modulus.
Resumo:
报道了快速热化学气相沉积(RTCVD)工艺制备多晶硅(poly -Si)薄膜及电池的实验和结果。采用SiH_2Co_2作为原料气体,衬底温度为1030℃时,薄膜的生长速率为10nm/s。发现薄膜的平均晶粒度及载流子迁移率与衬底温度和材料有关。用该薄膜在未抛光重掺杂磷的硅衬底上制备1cm~2的p~+n结样品电池,无减反射涂层,其转换效率为4.54%(AM1.5,100mW/cm~2,25℃)。
Resumo:
An electrically bistable device has been fabricated using nanocomposite films consisting of silver nanoparticles and a semiconducting polymer by a simple spin-coating method. The current-voltage characteristics of the as-fabricated devices exhibit an obvious electrical bistability and negative differential resistance effect. The current ratio between the high-conducting state and low-conducting state can reach more than 103 at room temperature. The electrical bistability of the device is attributed to the electric-filed-induced charge transfer between the silver nanoparticles and the polymer, and the negative differential resistance behavior is related to the charge trapping in the silver nanoparticles. The results open up a simple approach to fabricate high quality electrically bistable devices by doping metal nanoparticles into polymer.