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1.
林峰  郑法伟  欧阳方平 《物理学报》2009,58(13):193-S198
利用密度泛函理论研究了0.25单层(ML),0.5ML,0.75ML和1ML吸附率下H2O在SrTiO3-(001)TiO2表面上的吸附行为.比较了不同吸附率下分子吸附和解离吸附的稳定性,利用微动弹性带(nudged elastic band)方法计算了H2O的解离势垒.结果表明:在低吸附率(0.25ML和0.5ML)时,H2O表现为解离吸附;在0.75ML吸附率下,分子吸附和解离吸附同时存在;而在全吸附(吸附率为1ML)时,分子吸附更稳定.基于对H2O分子与表面之间以及H2O分子之间的电荷转移和相互作用的分析,讨论了吸附率对H2O吸附和解离的影响. 关键词: 2O')" href="#">H2O 吸附 3-(001)TiO2表面')" href="#">SrTiO3-(001)TiO2表面 密度泛函理论  相似文献   

2.
车晓芳  陈宏善 《物理学报》2011,60(4):43601-043601
(H2O)6是形成三维立体结构的最小水分子团簇并具有能量较低的多个稳定异构体.本文利用从头计算方法研究了各稳定结构的异构化过程.(H2O)6的环状结构与最稳定结构的能量差0.31 eV为一个氢键的键能.水分子团簇的异构化是分子间氢键打开或重组的过程,不同异构体之间的转化每次只涉及一个氢键的打开或重组,异构化的能垒高度在0.07—0.21 eV之间. 关键词: 水分子团簇 2O)6')" href="#">(H2O)6 异构化过程 从头计算  相似文献   

3.
赵巍  汪家道  刘峰斌  陈大融 《物理学报》2009,58(5):3352-3358
采用第一性原理研究了H2O分子在Fe(100),Fe(110),Fe(111)三个高对称晶面上的表面吸附.结果表明,H2O分子在三个晶面上的最稳定结构皆为平行于基底表面的顶位吸附结构.H2O分子与三个晶面相互作用的吸附能及几何结构计算结果表明H2O分子与三个晶面的相互作用程度不同,H2O分子与Fe(111)晶面的相互作用最强,其次是Fe(100),相互作用最弱的是Fe(110)表面,而这与晶面原子 关键词: 第一性原理 Fe单晶表面 2O分子')" href="#">H2O分子 分子吸附  相似文献   

4.
基于密度泛函理论的第一性原理计算方法,研究了H2O分子在五边形BCN上的吸附与解离过程.研究结果表明,五边形BCN结构的B原子是H2O分子的最稳定的活性吸附位点. H2O分子在该活性位点极易解离,其初步解离过程为放热反应且分解势垒仅为0.191 eV,并形成稳定的OH/H产物.深入研究发现,H2O分子初步解离后的五边形BCN表面,可直接分解后续吸附的H2O分子.该研究结果为五边形BCN对H2O分子的吸附解离机制提供理论借鉴.  相似文献   

5.
张轶杰  唐春梅  高凤志  王成杰 《物理学报》2014,63(14):147401-147401
采用密度泛函理论中的广义梯度近似研究C6Li吸附H2O分子并将之进行分解的催化过程. 几何优化发现:Li原子最稳定的吸附位置是位于C 原子顶位上方. 研究表明,第一个H2O 分子吸附在C6Li上需要克服1.77 eV的能量势垒,然后分解为H和OH且与Li原子成键. 当吸附第二个H2O分子时,第二个H2O分子需要克服1.2 eV的能量势垒分解为H和OH,其中H与Li原子上的H原子结合成H2,OH则替代Li 原子上的H结合在Li原子上. 因此C6Li 可以作为催化剂将H2O分子进行分解得到H2. 分析可知:C6Li主要是通过Li原子与H2O之间形成的偶极矩作用来吸附H2O 分子,与C60Li12 的储氢机制类似. 研究结果可为储氢材料的制备提供一个新的思路. 关键词: 6')" href="#">C6 Li 2O')" href="#">H2O 密度泛函理论  相似文献   

6.
采用第一性原理方法研究了NH3分子在LiH(100)晶面的表面吸附情况.通过研究LiH(100)/NH3体系的吸附位置、吸附能和电子结构,发现NH3分子在LiH(100)晶面主要是化学吸附,初始位置为NH3分子中N-H键在Li顶住时失去一个H原子,并在LiH(100)面形成NH2基,其吸附能为0.511 eV,属于强化学吸附,吸附作用最强.此时NH2基与附近H原子和Li原子之间为离子键作用,NH2基中N—H键为共价键;NH3分子中另一个H原子与LiH表面的一个H原子形成一个H2分子逸出表面.H2分子中H-H键为明显的共价键.  相似文献   

7.
周广刚  卢贵武  矫玉秋  李英峰  王坤  于养信 《物理学报》2012,61(1):10204-010204
通过构建晶体表面-KDP分子界面吸附结构模型, 采用分子动力学和密度泛函计算方法研究KDP分子在(001)和(010)面吸附的物理化学过程, 考察了温度对物理吸附行为的影响. 研究表明: KDP晶体表面的吸附过程和生长习性主要由化学吸附主导, 化学吸附能的计算表明[K-O8]基元在(001)界面的结合能是(010)界面结合能的2.86倍; 在饱和温度附近, [H2PO4]-阴离子在KDP界面的物理结合能随温度的变化呈现振荡特征, 溶液中有较多的离子团簇形成, 溶液变得很不稳定; 当温度从323 K降低至308 K时, 水分子在界面的结合能总体呈下降趋势, 而KDP分子在界面的吸附能总体呈上升趋势, 脱水过程是水分子和[H2PO4]-阴离子在固液界面边界层竞争吸附的结果. 研究结果对确足晶体生长界面动力学过程发展和完善晶体生长理论有重要意义. 关键词: 分子动力学 双层结构模型 结合能  相似文献   

8.
Pu(100)表面吸附CO2的密度泛函研究   总被引:1,自引:0,他引:1       下载免费PDF全文
蒙大桥  罗文华  李赣  陈虎翅 《物理学报》2009,58(12):8224-8229
采用广义梯度密度泛函理论的改进Perdew-Burke-Ernzerh方法结合周期性层晶模型,研究了CO2分子在Pu(100)面上的吸附和解离.吸附能和几何构型的计算表明,CO2以穴位C4O4构型吸附最为有利,吸附能为1.48 eV.布居分析和态密度分析表明,CO2与Pu表面相互作用的本质主要是CO2分子的杂化轨道2πμ与Pu5f,Pu6d,Pu7s轨道通过强电子转移和弱重叠杂化的方式相互作用而生成了新的化学键.计算的CO2→CO+O解离能垒为0.66 eV,解离吸附能为2.65 eV, 表明在一定热激活条件下CO2分子倾向于发生解离性吸附.O2,H2,CO和CO2在Pu (100)面吸附的比较分析表明,较低温度下的吸附强度顺序依次为O2,CO,CO2,H2;较高温度下的吸附强度顺序依次为O2,CO2,CO,H2. 关键词: 密度泛函理论 Pu (100) 2')" href="#">CO2 吸附和解离  相似文献   

9.
施丹华  曹培林 《物理学报》1987,36(3):368-371
本文采用ASED-MO方法,计算了H2O分子在Pt(100)面上不同吸附取向、不同吸附位置时的结合能,以及表面扩散激活能和扩散系数.计算结果表明,H20分子必须通过氢原子朝向衬底的预吸附态.才能进人氧原子朝向衬底的垂直顶位化学吸附状态.当H2O分子处于上述预吸附态时,势能面极为平坦,扩散系数大,迁移性高. 关键词:  相似文献   

10.
给出了优化小分子在团簇表面吸附结构的遗传算法.结合经验势函数,搜寻了水分子在(TiO2)n(n=3—6)团簇上可能的吸附方式;利用B3LYP/6-31G**方法对各种吸附结构进行了优化.结果表明水分子主要通过O原子以非解离方式吸附到团簇中配位数较低或位置比较凸出的Ti原子上.分子轨道分析表明,水分子与团簇之间的成键主要来自吸附位Ti原子3s3p轨道的贡献,水分子的轨道保持了气相水分子中的基本特征,但离域化程度增大 关键词: 2团簇')" href="#">TiO2团簇 2O吸附')" href="#">H2O吸附 遗传算法 DFT  相似文献   

11.
We have studied the property of single-walled ZnO nanotubes with adsorbed water molecules, and theoretically designed a new sensor for detecting water molecules using single-walled ZnO nanotubes using a combination of density functional theory and the non-equilibrium Green's function method. Details of the geometric structures and adsorption energies of the H2O molecules on the ZnO nanotube surface have been investigated. Our computational results demonstrate that the formation of hydrogen bonding between the H2O molecules and the ZnO nanotube, and adsorption energies of the H2O molecules on the ZnO nanotube are larger than the adsorption energies of other gas molecules present in the atmospheric environment. Moreover, the current-voltage curves of the ZnO nanotube with and without H2O molecules adsorbed on its surface are calculated, the results of which showed that the H2O molecules form stable adsorption configurations that could lead to the decrease in current. These results suggest that the single-walled ZnO nanotubes are able to detect and monitor the presence of H2O molecules by applying bias voltages.  相似文献   

12.
Michael A Henderson   《Surface science》1998,400(1-3):203-219
The reaction of CO2 and H2O to form bicarbonate (HCO3) was examined on the nearly perfect and vacuum annealed surfaces of TiO2(110) with temperature programmed desorption (TPD), static secondary ion mass spectrometry (SSIMS) and high resolution electron energy loss spectrometry (HREELS). The vacuum annealed TiO2(110) surface possesses oxygen vacancy sites that are manifested in electronic EELS by a loss feature at 0.75 V. These oxygen vacancy sites bind CO2 only slightly more strongly (TPD peak at 166 K) than do the five-coordinated Ti4+ sites (TPD peak at 137 K) typical of the nearly perfect TiO2(110) surface. Vibrational HREELS indicates that CO2 is linearly bound at the latter sites with a νa(OCO) frequency similar to the gas phase value. In contrast, oxygen vacancies dissociate H2O to bridging OH groups which recombine to liberate H2O in TPD at 490 K. No evidence for a reaction between CO2 and H2O is detected on the nearly perfect surface. In sequentially dosed experiments on the vacuum annealed surface at 110 K, CO2 adsorption is blocked by the presence of preadsorbed H2O, adsorbed CO2 is displaced by postdosed H2O, and there is little or no evidence for bicarbonate formation in either case. However, when CO2 and H2O are simultaneously dosed, a new CO2 TPD state is observed at 213 K, and the 166 K state associated with CO2 at the vacancies is absent. SSIMS was used to tentatively assign the 213 K CO2 TPD state to a bicarbonate species. The 213 K CO2 TPD state is not formed if the vacancy sites are filled with OH groups prior to simultaneous CO2+H2O exposure. Sticking coefficient measurements suggest that CO2 adsorption at 110 K is precursor-mediated, as is known to be the case for H2O adsorption on TiO2(110). A model explaining the circumstances under which the proposed bicarbonate species is formed involves the surface catalyzed conversion of a precursor-bound H2O–CO2 van der Waals complex to carbonic acid, which then reacts at unoccupied oxygen vacancies to generate bicarbonate, but falls apart to CO2 and H2O in the absence of these sites. This model is consistent with the conditions under which bicarbonate is formed on powdered TiO2, and is similar to the mechanism by which water catalyzes carbonic acid formation in aqueous solution.  相似文献   

13.
通过对粘度、自旋-自旋弛豫时间以及1H NMR谱的测定,研究了PVP在不同体积配比的水/丙酮溶液中的特性粘数变化和分子运动规律,并讨论了引起这些变化的原因.结果表明:随着丙酮的不断加入,PVP的特性粘数[η]先增加后减小,而T2H先减小后增大.[η]出现最大值也是T2H出现最小值的时候,丙酮的体积百分数为40%.丙酮的加入破坏了水分子间自身氢键相互作用形成的网状结构,解离出来的水分子被PVP优先吸附到大分子链上,部分与羰基形成氢键,另一部分以自由水的形式被包裹在大分子线团内.水分子的不断进入以及与水形成新的氢键使PVP链逐渐伸展,引起特性粘数的增大,分子运动受阻.当丙酮含量增加到一定程度时,水的含量不足以使大分子链继续膨胀,故链呈卷缩状态,使大分子运动逐渐恢复自由.1H NMR谱中各质子的化学位移变化也证实了此过程中的氢键变化规律.  相似文献   

14.
Surface enhanced Raman scattering of adsorbates on an Ag electrode in various electrolytes (e.g., 0.1–1.0 M KF, KCl, KBr, KI, K3PO4, and NaN3) has been investigated in an effort to elucidate the mechanism of the enhancement of water compared to that for other adsorbates. (It is well known, for example, that pyridine exhibits large enhancement in 0.1 M KCl while SERS from water is not detectable unless the salt concentration is raised to almost 1 M.) Use of an optical multichannel analyzer allowed rapid recording of Raman spectra, and SERS intensities of adsorbates could therefore be monitored simultaneously during a continuous oxidation-reduction cycle. Potential dependencies of SERS intensities when the electrode potential is cycled in a non-faradiac potential range immediately following oxidation and reduction indicate that adatoms are partially responsible for the Raman enhancement. Furthermore, the anions in the electrolyte play an important role in stabilizing these “active sites.” For this reason, the degree of enhancement is influenced by the solubility of the Ag compound formed during oxidation and the specific adsorption of the anions to the Ag surface. Preferential alignment of H2O molecules with their oxygen ends facing the surface at positive potentials, the tendency of anions in the electrolyte to disrupt hydrogen bonding with the water network, and the weak hydrogen bonding of H2O with the anions give rise to a SERS lineshape from adsorbed H2O molecules which is narrower than, and thus distinguishable from, the Raman line of bulk water. Thus, the degree to which the particular anions in the electrolyte disrupt hydrogen bonding among water molecules and reform hydrogen bonding between the anions and H2O molecules influences the SERS lineshape and the apparent enhancement of the H2 Raman emission.  相似文献   

15.
The interaction of water with solid surfaces: Fundamental aspects   总被引:1,自引:0,他引:1  
The purpose of this review is to compare and discuss recent experimental and theoretical results in the field of H2O-solid interactions. We emphasize studies of low (submonolayer) coverages of water on well-characterized, single-crystal surfaces of metals, semiconductors and oxides. We discuss the factors which influence dissociative versus associative adsorption pathways. When H2O adsorbs molecularly, it tends to form three-dimensional hydrogen-bonded clusters, even at fractional monolayer coverages, because the strength of the attractive interaction between two molecules is comparable to that of the substrate-H2O bond. The template effect of the substrate is important in determining both the local orientation and long-range order of H2O molecules in these clusters. The influence of surface additive atoms (e.g., O, Br, Na, K) and also surface imperfections (e.g. steps and defects) on the surface structure and chemistry of H2O is examined in detail. Some results on single-crystal substrates are compared with earlier measurements of H2O adsorption on high-area materials.  相似文献   

16.
The water adsorption on the bare and H-terminated Si(1 0 0) surfaces has been studied by the BML-IRRAS technique. It is found that H-terminated surfaces are much less reactive compared to the bare silicon surfaces. The (1 × 1)-H and (3 × 1)-H surfaces show similar and less reactivity pattern compared to the (2 × 1)-H surface. At higher exposures, the water reaction with coupled monohydride species provides an effective channel for oxygen insertion into the back bonds of dihydride species. It is not attributed to the H–Si–Si–H + H2O → H–S–Si–OH + H2, which could give rise to the characteristic Si–H and Si–OH modes, respectively at 2081 and 921 cm−1. A more suitable reaction mechanism involving a metastable species, H–Si–Si–H + H2O → H2Si  HO–Si–H (metastable) explains well the bending modes of oxygen inserted silicon dihydride species which are observed relatively strongly in the reaction of water with H-terminated Si(1 0 0) surfaces.  相似文献   

17.
The interaction of HNCO with oxygen dosed Rh(111) surface has been investigated by Auger electron, electron energy loss and thermal desorption spectroscopy. The presence of adsorbed oxygen exerted no apparent influence on the weakly adsorbed HNCO (Tp = 130 K). It promoted, however, the dissociative adsorption of HNCO by forming a strong O—H bond which prevented the associative desorption of HNCO. As a result no H2 and NH3 formation occurred, in contrast with the clean surface, and the surface concentration of irreversibly bonded NCO was also increased. New products of the surface reaction were H2O and CO2, in addition to CO and N2 observed on a clean surface. From the behavior of the losses characteristic for the adsorbed NCO it appeared that the preadsorbed oxygen exerted a significant stabilizing effect on the NCO bonded to the Rh.  相似文献   

18.
分子动力学模拟研究方解石表面润湿性反转机理   总被引:1,自引:0,他引:1       下载免费PDF全文
利用分子动力学模拟技术从分子尺度探究方解石表面润湿性反转机理.首先,研究方解石表面润湿性反转过程;而后,从原油分子-方解石表面与原油分子-原油分子/水分子相互作用两个方面系统揭示方解石表面润湿性反转机理.结果:(1)水分子能够驱离方解石表面弱吸附的非极性分子造成润湿性的改变,但不能驱离强吸附的极性分子使润湿性反转难以实现;(2)原油分子极性越强与方解石表面相互作用越强,极性分子与方解石表面之间主要为静电力,非极性分子与方解石表面之间主要为范德华力;(3)原油分子极性越相近分子之间的相互作用越强,分子极性相差越大分子之间的相互作用越弱.非极性分子之间主要是范德华力,极性分子之间主要是静电力;(4)原油分子在方解石表面和水分子的共同作用下形成乙酸-吡啶-水-甲苯-己烷的稳定吸附序列.本研究为靶向提高采收率技术的设计与应用提供理论基础.  相似文献   

19.
利用第一性原理计算方法,研究合金效应对PtRun-1(n=2-14)和H2O-PtRun-1(n=2-14)体系的几何构型、稳定性及吸附水特性的影响.结果表明:铂原子替代钌原子的能量较低,容易与钌团簇形成合金,铂原子喜欢占据配位数较低位置.相对于纯钌团簇,合金效应很大程度上提高了水分子在PtRun团簇上的吸附能.考虑范德瓦尔斯力后,水分子在PtRu7上的吸附能增大,分解势垒降低,水分子可以在PtRu7上分解.铂钌合金更适合做分解水制取氢气的催化剂.  相似文献   

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