以四氯化锡和氟化铵为原料,异丙醇和水为溶剂,采用喷雾热解法,在载玻片上制备氟掺杂二氧化锡导电薄膜(fluorine-doped tin oxide,FTO)。研究了四氯化锡浓度、氟化铵浓度、双氧水浓度、异丙醇与水的体积比对FTO薄膜的透光率和方块电阻的...以四氯化锡和氟化铵为原料,异丙醇和水为溶剂,采用喷雾热解法,在载玻片上制备氟掺杂二氧化锡导电薄膜(fluorine-doped tin oxide,FTO)。研究了四氯化锡浓度、氟化铵浓度、双氧水浓度、异丙醇与水的体积比对FTO薄膜的透光率和方块电阻的影响。运用X射线衍射仪、扫描电子显微镜、紫外-可见分光光度计和四探针测试仪分别对FTO薄膜进行了表征。结果表明:在喷雾热解液中加入少量的H2O2(0.05mol/L)可明显提高FTO薄膜在可见光区的透光率,而不影响其方块电阻;当喷雾热解液组成为0.8mol/LSnCl4,0.1mol/LNH4F,0.05mol/LH2O2,异丙醇与水的体积比为8:2,衬底温度为500℃,喷涂100次时,所得FTO薄膜在可见光区的平均透光率为84%,方块电阻为15Ω/□,且FTO薄膜平整致密、二氧化锡晶粒均匀。展开更多
The tungsten trioxide(WO3) thin films were firstly prepared by spin-coating-pyrolysis methods using the ammonium metatungstate((NH4)6H2W12O40)DMF/water solution, and successfully applied as the efficient compact...The tungsten trioxide(WO3) thin films were firstly prepared by spin-coating-pyrolysis methods using the ammonium metatungstate((NH4)6H2W12O40)DMF/water solution, and successfully applied as the efficient compact layers for the planar perovskite solar cells. The influence of the WO3 film thickness and the rinsing treatment of CH_3NH_3 PbI_3 thin film with isopropanol on the photovoltaic performance of the corresponding perovskite solar cells was systematically investigated. The results revealed that the perovskite solar cell with a 62 nm thick WO3 compact layer achieved a photoelectric conversion efficiency of 5.72%, with a short circuit photocurrent density of 17.39 mA/cm^2, an open circuit voltage of 0.58 V and a fill factor of 0.57. The photoelectric conversion efficiency was improved from 5.72% to 7.04% by the isopropanol rinsing treatment.展开更多
An explicitly coupled two-dimensional (2D) multiphysics finite element method (FEM) framework comprised of thermal, phase field, mechanical and electromagnetic (TPME) equations was developed to simulate the conversion...An explicitly coupled two-dimensional (2D) multiphysics finite element method (FEM) framework comprised of thermal, phase field, mechanical and electromagnetic (TPME) equations was developed to simulate the conversion of solid kerogen in oil shale to liquid oil through </span><i><span style="font-family:Verdana;font-size:12px;">in-situ</span></i><span style="font-family:Verdana;font-size:12px;"> pyrolysis by radio frequency heating. Radio frequency heating as a method of <i></span><i><span style="font-family:Verdana;font-size:12px;">in-situ</span></i><span style="font-family:Verdana;font-size:12px;"></i> pyrolysis represents a tenable enhanced oil recovery method, whereby an applied electrical potential difference across a target oil shale formation is converted to thermal energy, heating the oil shale and causing it to liquify to become liquid oil. A number of <i></span><i><span style="font-family:Verdana;font-size:12px;">in-situ</span></i><span style="font-family:Verdana;font-size:12px;"></i> pyrolysis methods are reviewed but the focus of this work is on the verification of the TPME numerical framework to model radio frequency heating as a potential dielectric heating process for enhanced oil recovery.</span></span><span style="font-size:10pt;font-family:""> </span><span style="font-family:Verdana;">Very few studies exist which describe production from oil shale;furthermore, there are none that specifically address the verification of numerical models describing radio frequency heating. As a result, the Method of Manufactured Solutions (MMS) was used as an analytical verification method of the developed numerical code. Results show that the multiphysics finite element framework was adequately modeled enabling the simulation of kerogen conversion to oil as a part of the analysis of a TPME numerical model.展开更多
文摘以四氯化锡和氟化铵为原料,异丙醇和水为溶剂,采用喷雾热解法,在载玻片上制备氟掺杂二氧化锡导电薄膜(fluorine-doped tin oxide,FTO)。研究了四氯化锡浓度、氟化铵浓度、双氧水浓度、异丙醇与水的体积比对FTO薄膜的透光率和方块电阻的影响。运用X射线衍射仪、扫描电子显微镜、紫外-可见分光光度计和四探针测试仪分别对FTO薄膜进行了表征。结果表明:在喷雾热解液中加入少量的H2O2(0.05mol/L)可明显提高FTO薄膜在可见光区的透光率,而不影响其方块电阻;当喷雾热解液组成为0.8mol/LSnCl4,0.1mol/LNH4F,0.05mol/LH2O2,异丙醇与水的体积比为8:2,衬底温度为500℃,喷涂100次时,所得FTO薄膜在可见光区的平均透光率为84%,方块电阻为15Ω/□,且FTO薄膜平整致密、二氧化锡晶粒均匀。
基金Project supported by the National Natural Science Foundation of China(Nos.51472071,512720616,51072043)the National Basic Research Program of China(No.2011CBA00700)
文摘The tungsten trioxide(WO3) thin films were firstly prepared by spin-coating-pyrolysis methods using the ammonium metatungstate((NH4)6H2W12O40)DMF/water solution, and successfully applied as the efficient compact layers for the planar perovskite solar cells. The influence of the WO3 film thickness and the rinsing treatment of CH_3NH_3 PbI_3 thin film with isopropanol on the photovoltaic performance of the corresponding perovskite solar cells was systematically investigated. The results revealed that the perovskite solar cell with a 62 nm thick WO3 compact layer achieved a photoelectric conversion efficiency of 5.72%, with a short circuit photocurrent density of 17.39 mA/cm^2, an open circuit voltage of 0.58 V and a fill factor of 0.57. The photoelectric conversion efficiency was improved from 5.72% to 7.04% by the isopropanol rinsing treatment.
文摘An explicitly coupled two-dimensional (2D) multiphysics finite element method (FEM) framework comprised of thermal, phase field, mechanical and electromagnetic (TPME) equations was developed to simulate the conversion of solid kerogen in oil shale to liquid oil through </span><i><span style="font-family:Verdana;font-size:12px;">in-situ</span></i><span style="font-family:Verdana;font-size:12px;"> pyrolysis by radio frequency heating. Radio frequency heating as a method of <i></span><i><span style="font-family:Verdana;font-size:12px;">in-situ</span></i><span style="font-family:Verdana;font-size:12px;"></i> pyrolysis represents a tenable enhanced oil recovery method, whereby an applied electrical potential difference across a target oil shale formation is converted to thermal energy, heating the oil shale and causing it to liquify to become liquid oil. A number of <i></span><i><span style="font-family:Verdana;font-size:12px;">in-situ</span></i><span style="font-family:Verdana;font-size:12px;"></i> pyrolysis methods are reviewed but the focus of this work is on the verification of the TPME numerical framework to model radio frequency heating as a potential dielectric heating process for enhanced oil recovery.</span></span><span style="font-size:10pt;font-family:""> </span><span style="font-family:Verdana;">Very few studies exist which describe production from oil shale;furthermore, there are none that specifically address the verification of numerical models describing radio frequency heating. As a result, the Method of Manufactured Solutions (MMS) was used as an analytical verification method of the developed numerical code. Results show that the multiphysics finite element framework was adequately modeled enabling the simulation of kerogen conversion to oil as a part of the analysis of a TPME numerical model.