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1.
利用微分电化学质谱和电化学原位衰减全反射红外光谱技术探究了Cu和CuPd催化剂上CO_2和CO的电化学还原行为.红外光谱观察到了生成甲醇、甲烷与乙烯的CH_x中间物种.在CuPd电极CO_2还原过程中,红外光谱的CO吸附峰起始电位比Cu正移大约300 mV,说明CuPd能够有效促进CO_2还原;CO饱和溶液中,Cu和CuPd电极CO起始吸附电位基本相同;两电极上CO谱带出现的电位与CO_3~(2-)的谱带降低的电位基本相同,说明C O的吸附需要CO_3~(2-)的脱附.利用电化学在线质谱发现在CuPd电极上CO还原产生CH_4和CH_3OH的起始电位比Cu电极正移约200 mV.推测催化活性的提升可能是由于Pd的引入改变了Cu的d能带,且Pd吸附更多的H,从而促进CO_2还原,使CO能够与H结合并被深度还原.  相似文献   

2.
本文利用循环伏安法和电化学原位红外光谱的联用,研究了Pt(111)和Pt膜电极在CO2饱和的酸性溶液中氢析出和CO2还原的竞争. 发现:(i)在pH>2的溶液中,主要反应是氢析出,界面pH值随着氢析出突然增加;(ii)通过红外光谱检测,COad是CO2还原过程中唯一的吸附中间体;(iii)COad生成速率随着欠电位沉积氢(UPD-H)覆盖的增加而增大,并在氢析出的起始电位达到最大值;(iv)在氢析出时,COad的减少与CO2吸附和还原所必需的的中间产物(Had)有限的可用位点和停留时间相关.  相似文献   

3.
利用电化学衰减全反射原位傅里叶变换红外光谱与微分电化学质谱联用技术,在流动电解池环境以及恒电位条件下研究了Pt电极和Pt电极通过表面电沉积Ru形成的PtRu电极(PtxRuy)上发生的甲醇氧化反应(反应电解质溶液为0.1 mol/L HClO4+0.5 mol/L MeOH). 在0.3~0.6 V(参比电极为可逆氢参比)实验用到的所有电极上,CO是唯一能从红外光谱观察到的与甲醇相关的表面吸附物;在Pt0.56Ru0.44电极上可以观察到CO吸附在Ru原子形成的岛上和CO线式吸附在Pt电极表面红外波段,而其他电极上只能观察到Pt表面上线式吸附的CO;甲醇氧化活性按Pt0.73Ru0.27>Pt0.56Ru0.44>Pt0.83Ru0.17>Pt的顺序递减;在0.5 V 时,甲醇在Pt0.73Ru0.27电极上的氧化反应的CO2电流效率达到了50%.  相似文献   

4.
本文采用微纳加工方法制备了负载高密度Ag-Cu纳米颗粒的N掺杂TiO2纳米棒阵列样品. 通过TiO2的N掺杂,可将其吸光范围调控至与Ag纳米颗粒的等离激元吸收频率相匹配的波段,从而实现复合材料中肖特基结与共振能量转移过程的协同作用. 与此同时,Cu纳米颗粒可以为CO2还原提供活性位点. 在全谱光照射下,复合样品光催化CO2还原的活性显著提高,CH4生成速率可达720 μmol·g-1·h-1.  相似文献   

5.
电催化CO2还原反应可以产生HCOOH和CO,目前该反应是将可再生电力转化为化学能存储在燃料中的最有前景的方法之一. SnO2作为将CO2转换为HCOOH和CO的良好催化剂,其反应发生的晶面可以是不同的. 其中(110)面的SnO2非常稳定,易于合成. 通过改变SnO2(110)的Sn:O原子比例,得到了两种典型的SnO2薄膜:完全氧化型(符合化学计量)和部分还原型. 本文研究了不同金属(Fe、Co、Ni、Cu、Ru、Rh、Pd、Ag、Os、Ir、Pt和Au)掺杂的SnO2(110),发现在CO2还原反应中这些材料的催化活性和选择性是不同的. 所有这些变化都可以通过调控(110)表面中Sn:O原子的比例来控制. 结果表明,化学计量型和部分还原型Cu/Ag掺杂的SnO2(110)对CO2还原反应具有不同的选择性. 具体而言,化学计量型的Cu/Ag掺杂的SnO2(110)倾向于产生CO(g),而部分还原型的表面倾向于产生HCOOH(g). 此外,本文还考虑了CO2还原的竞争析氢反应. 其中Ru、Rh、Pd、Os、Ir和Pt掺杂的SnO2(110)催化剂对析氢反应具有较高的活性,其他催化剂对CO2还原反应具有良好的催化作用.  相似文献   

6.
本文利用紫外吸收光谱和稳态荧光光谱技术结合理论模型,研究了钙钛矿材料CH3NH3PbI3晶体在光激发过程中的电荷复合动力学行为,进而获得晶体的扩散长度. 电荷载体的扩散长度是判断光电材料的重要参数. 研究通过合成两种不同缺陷态浓度的CH3NH3PbI3晶体,测量这两种晶体在0.019∽4.268 μJ/cm2的激光激发下的时间分辨荧光光谱,利用动力学模型对光谱进行拟合,可以获得每个晶体的掺杂浓度,空穴浓度以及电荷复合参数. 将这些参数结合已有公式,最终可获得每个晶体的电荷载体的扩散长度.  相似文献   

7.
本文利用266 nm波长的激光及程序升温脱附的方法研究了甲醇在ZnO(0001)表面的光催化反应. TPD结果显示部分的CH3OH以分子的形式吸附在ZnO(0001)表面,而另外一部分在表面发生了解离. 实验过程中探测到H2,CH3·,H2O,CO,CH2O,CO2和CH3OH这些热反应产物. 紫外激光照射实验结果表明光照可以促进CH3OH/CH3O·解离形成CH2O,在程序升温或光照的过程中它又可以转变为HCOO-. CH2OHZn与OHad反应在Zn位点上形成H2O分子. 升温或光照都能促进CH3O·转变为CH3·. 该研究对CH3OH在ZnO(0001)表面的光催化反应机理提供了一个新的见解.  相似文献   

8.
 用密度泛函方法和相对论有效原子实势,分别对PdCO2,PdCO和PdH的基态几何构型进行优化, 得到PdCO2分子基态为Cs构型, Pd与CO2分子在同一平面, 键长PdC为0.203 0 nm, CO为0.118 3 nm, CO′为0.121 0 nm, 键角∠OCO′为154.215°,电子状态为1A′; PdCO分子基态电子状态为1+, 键长PdC为0.183 4 nm, CO为0.114 0 nm, 键角∠PdCO为180°; PdH分子基态为2∑, 键长PdH为0.152 6 nm。根据电子-振动近似理论计算了不同温度下金属Pd 与CO2,CO及H2分子反应的生成热力学函数, 导出了反应平衡压力随温度的变化关系。分析认为杂质CO2气体引起Pd合金膜中毒可能是由于CO2分子吸附在Pd膜表面,形成Pd的CO2化合物后,再自发分解为PdO和CO,而使Pd表面出现O和CO中毒所致。  相似文献   

9.
杨秋红  曾智江  徐军  苏良碧 《物理学报》2006,55(6):2726-2729
采用传统无压烧结工艺制备Mg,Ti共掺透明氧化铝陶瓷,测定了其吸收光谱、荧光光谱和激发光谱,结果表明,由于Mg2+的电荷补偿,当Ti掺入量较小时,Ti主要以Ti4+形式存在,(Mg,Ti):Al2O3透明陶瓷只在250nm的紫外波段有吸收峰,为O2-→Ti4+的电荷转移跃迁产生的吸收,并产生Ti4+离子在280—290nm和410—420nm的荧光发射峰  相似文献   

10.
Sr2CeO4电荷迁移发光的光谱结构规律研究   总被引:1,自引:0,他引:1       下载免费PDF全文
符史流  戴军  丁球科  赵韦人 《物理学报》2005,54(5):2369-2373
利用高温固相反应法分别合成了不同物相形成机理的Sr2CeO4,Sr 2CeO4∶Ca 2+和Sr2CeO4∶Ba2+样品,并对其光谱特性进行 了研究.结果发现,对于由SrO和CeO2直接反应生成的Sr2CeO4(Ⅰ),激发主峰位于256nm 左右;而对于SrCeO3和SrO反应生成的Sr2CeO4(Ⅱ),激发主峰位于279nm左右.在Sr2CeO4(Ⅰ)中掺入Ca2+,其激发光谱随着Ca2+离子浓度的增加逐渐接近于Sr2CeO4(Ⅱ)的激发光谱.激发主峰带应属于CeO6八面体终端Ce4+—O2-键的电荷迁移 带.对于激发光谱中340nm左右的弱激发峰,其峰值波长不受形成机理及Ca2+掺杂的影响,只是其强度 随着 激发主峰的红移而增加,它可能属于CeO6八面体平面上Ce4+—O2-键的电荷 迁移带.形成机理及Ca2+掺杂对发射光谱没有影响.Ca2+在Sr 2CeO 4(Ⅱ)与Ba2+在Sr2CeO4(Ⅰ)和(Ⅱ)中均难 于替代Sr2+的位置.  相似文献   

11.
F. Solymosi  J. Kiss 《Surface science》1981,104(1):181-198
No detectable adsorbed species were observed after exposure of HNCO to a clean Cu(111) surface at 300 K. The presence of adsorbed oxygen, however, exerted a dramatic influence on the adsorptive properties of this surface and caused the dissociative adsorption of HNCO with concomitant release of water. The adsorption of HNCO at 300 K produced two new strong losses at 10.4 and 13.5 eV in electron energy loss spectra, which were not observed during the adsorption of either CO or atomic N. These loses can be attributed to surface NCO on Cu(111). The surface isocyanate was stable up to 400 K. The decomposition in the adsorbed phase began with the evolution of CO2. The desorption of nitrogen started at 700 K. Above 800 K, the formation of C2N2 was observed. The characteristics of the CO2 formation and the ratios of the products sensitively depended on the amount of preadsorbed oxygen. No HNCO was desorbed as such, and neither NCO nor (NCO)2 were detected during the desorption. From the comparison of adsorption and desorption behaviours of HNCO, N, CO and CO2 on copper surfaces it was concluded that NCO exists as such on a Cu(111) surface at 300 K. The interaction of HNCO with oxygen covered Cu(111) surface and the reactions of surface NCO with adsorbed oxygen are discussed in detail.  相似文献   

12.
The adsorption properties of CO on the epitaxial five-monolayer Co/Cu(1 0 0) system, where the Co overlayer has stabilized in the metastable fcc-phase, are reported. This system is known to exhibit metallic quantum well (MQW) states at energies 1 eV or greater above the Fermi level, which may influence CO adsorption. The CO/fcc-Co/Cu(1 0 0) system was explored with low energy electron diffraction (LEED), inverse photoemission (IPE), reflection-absorption infrared spectroscopy (RAIRS) and temperature programmed desorption (TPD). Upon CO adsorption, a new feature is observed in IPE at 4.4 eV above EF and is interpreted as the CO 2π level. When adsorbed at room temperature, TPD exhibits a CO desorption peak at ∼355 K, while low temperature adsorption reveals additional binding configurations with TPD features at ∼220 K and ∼265 K. These TPD peak temperatures are correlated with different C-O stretch vibrational frequencies observed in the IR spectra. The adsorption properties of this surface are compared to those of the surfaces of single crystal hcp-Co, as well as other metastable thin film systems.  相似文献   

13.
A study of the adsorption/desorption behavior of CO, H2O, CO2 and H2 on Ni(110)(4 × 5)-C and Ni(110)-graphite was made in order to assess the importance of desorption as a rate-limiting step for the decomposition of formic acid and to identify available reaction channels for the decomposition. The carbide surface adsorbed CO and H2O in amounts comparable to the clean surface, whereas this surface, unlike clean Ni(110), did not appreciably adsorb H2. The binding energy of CO on the carbide was coverage sensitive, decreasing from 21 to 12 kcalmol as the CO coverage approached 1.1 × 1015 molecules cm?2 at 200K. The initial sticking probability and maximum coverage of CO on the carbide surface were close to that observed for clean Ni(110). The amount of H2, CO, CO2 and H2O adsorbed on the graphitized surface was insignificant relative to the clean surface. The kinetics of adsorption/desorption of the states observed are discussed.  相似文献   

14.
Among the possible products of CO2 electrochemical reduction, CO plays a unique and vital role, which can be an ideal feedstock for further reduction to C2+ products, and also the important component of syngas that can be used as feedstock for value-added chemicals and fuels. However, it is still a challenge to tune the CO selectivity on Cu electrode. Here we newly construct an ultrasound-assisted electrochemical method for CO2 reduction, which can tune the selectivity of CO2 to CO from less than 10% to >80% at −1.18 V versus (vs.) reversible hydrogen electrode (RHE). The partial current density of CO production is significantly improved by 15 times. By in-situ Raman study, the dominating factor for the improved CO production is attributed to the accelerated desorption of *CO intermediate. This work provides a facile method to tune the product selectivity in CO2 electrochemical reduction.  相似文献   

15.
The coadsorption of NO and other small gases (H2 and CO) on a polycrystalline Rh filament has been studied by thermal desorption mass spectroscopy, using 15NO. The sample was exposed to a mixture of nitric oxide and other gases with various concentrations of 15NO at room temperature. It is indicated that NO, CO and H2 coadsorbs on the rhodium surface, and NO desorbs as N2 and O2. NO is adsorbed mainly in the dissociation at lower coverage and molecular adsorption becomes dominant at higher coverage. But the amount of desorbed O2 was very small. The chemisorption of CO is affected by the chemisorbed NO. Thermal desorption of hydrogen is detected when the value of P15NO/PCO is very small. The hydrogen adsorbed on the rhodium surface is replaced by NO with a longer exposure time.  相似文献   

16.
本文利用程序升温脱附技术研究了氧空位浓度对甲基基团和CO在R-TiO2(110)表面吸附的影响. 结果表明,随着氧空位浓度的变化,吸附在桥氧位的甲基基团和吸附在五配位Ti4+位点上的CO分子的脱附温度呈现了不同的趋势,揭示了表面缺陷可能对R-TiO2(110)不同位点上的物质吸附具有重要影响.  相似文献   

17.
The adsorption of CO on Ni(111) has been studied using infrared reflection-absorption spectroscopy combined with LEED, Auger electron spectroscopy, thermal desorption spectroscopy and work function measurements. At low CO coverage (θ = 0.05) CO adsorbs on threefold sites with a strecthing frequency given by ωCO = 1817 cm?1. At θ = 0.30 all molecules have shifted to two-fold sites, and θ = 0.50, where a c(4 × 2) structure is observed, ωCO = 1910 cm?1. At θ = 0.57, with a (√7/2) × √7/2)R19.1° structure, one quarter of the molecules are adsorbed on top of the nickel atoms with the others in two-fold sites. Molecules bonded on the top sites give rise to a band at 2045 cm?1. The frequency shift due to dipole-dipole interactions is small compared with the shift resulting from bonding to different crystallographic sites.  相似文献   

18.
Adsorption of CO on Ni(100) has been investigated using secondary ion mass spectrometry (SIMS) and Auger electron spectroscopy at 175 and 295 K. Interaction with polycrystalline nickel was examined at 295, 325 and 365 K. All the secondary ions, Ni+, Ni2+, NiCO+ and Ni2CO+ show large increases in intensity as CO is adsorbed but there is no simple correlation of the secondary ion species with the sequence of linear and bridge-bonded CO species expected from electron energy loss spectroscopy. Adsorption of CO at 175 K on a hydrogen saturated Ni(100) surface, which is thought to permit only bridge-bonded adsorbed CO, does not result in any enhancement of Ni2CO+. The extent of increases in secondary ion yields after CO adsorption on the nickel surfaces are primarily related to the variations in the heat of adsorption as a function of surface coverage. The presence of more weakly-held species is important in enhancing secondary ion yields.  相似文献   

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