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1.
高潭华  吴顺情  张鹏  朱梓忠 《物理学报》2014,63(1):16801-016801
采用第一性原理方法研究了表面氢化的双层氮化硼的结构和电子性质.考虑了表面氢化的双层BN可能存在的六种主要构型,计算结果表明:AB-BN和AA-BN两种构型最为稳定.进一步分析了氢化后的双层BN最稳定构型的能带和电子性质.AB-BN和AA-BN两种构型的原子薄片均为直接带隙半导体,GGA计算的带隙值分别为1.47 eV和1.32 eV.因为GGA通常严重低估带隙值,采用hybrid泛函计算得到带隙值分别为2.52eV和2.34 eV.在最稳定的AB-BN和AA-BN两种构型中,B-N键呈现共价键,而B-H和N-H则具有明显的离子键的特点.在双轴应变下氢化双层BN原子薄片可以被连续地调节带隙,当晶格常数被压缩约8%时,原子薄片由半导体性转变为金属性.  相似文献   

2.
二维硅烯的商业用途通常受到其零带隙的抑制,限制了其在纳米电子和光电器件中的应用.利用基于密度泛函理论的第一性原理计算,单层硅烯的带隙通过卤原子的化学官能化被成功打开了,并综合分析了卤化对单层硅烯的结构,电子和光学性质的影响.研究结果表明卤化使结构变得扭曲,但保持了良好的稳定性.通过HSE06泛函,全功能化赋予硅烯1.390至2.123 eV的直接带隙.键合机理分析表明,卤原子与主体硅原子之间的键合主要是离子键.最后,光学性质计算表明,I-Si-I单层在光子频率为10.9 eV时达到最大光吸收,吸收值为122000 cm-1,使其成为设计新型纳米电子和光电器件的有希望的候选材料.  相似文献   

3.
异质结构的构筑与堆垛是新型二维材料物性调控及应用的有效策略.基于密度泛函理论的第一性原理计算,本文研究了4种不同堆叠构型的新型二维Janus Ga2SeTe/In2Se3范德瓦耳斯异质结的电子结构和光学性质. 4种异质结构型均为Ⅱ型能带结构的间接带隙半导体,光致电子的供体和受体材料由二维In2Se3的极化方向决定.光吸收度在可见光区域高达25%,有利于太阳可见光的有效利用.双轴应变可诱导直接-间接带隙转变,外加电场能有效调控异质结构带隙,使AA2叠加构型的带隙从0.195 eV单调增大到0.714 eV,AB2叠加构型的带隙从0.859 eV单调减小到0.058 eV,两种调控作用下异质结的能带始终保持Ⅱ型结构.压缩应变作用下的异质结在波长较短的可见光区域表现出更优异的光吸收能力.这些研究结果揭示了Janus Ga2SeTe/In2Se3范德瓦耳斯异质结电子结构的调控机理,为新型光电器件的设计提供理论指导.  相似文献   

4.
MgS晶体结构性质的密度泛函研究   总被引:3,自引:0,他引:3       下载免费PDF全文
陈中钧  肖海燕  祖小涛 《物理学报》2005,54(11):5301-5307
采用基于密度泛函理论(DFT)基础上的第一性原理赝势平面波方法对MgS晶体四种构型(B1,B2,B3,B4)的体相性质进行了系统研究.计算结果表明,B1构型的晶体是间接带隙型半导体,而B2,B3和B4构型的晶体则是直接带隙型材料,其中B2构型的带隙宽度最窄,其值为0.42eV.在压力不超过200.3GPa时,B1构型的MgS 晶胞是最稳定的,当压力大于该值时,会发生B1构型到B2构型的转化. 关键词: MgS 第一性原理赝势平面波方法 电子结构 转化压力  相似文献   

5.
黄艳平  袁健美  郭刚  毛宇亮 《物理学报》2015,64(1):13101-013101
基于密度泛函理论的第一性原理计算, 研究了硅烯饱和吸附碱金属元素原子的稳定性、微观几何结构和电子性质, 并与纯硅烯及其饱和氢化结构进行了对比分析. 研究发现复合物SiX(X=Li, Na, K, Rb)的形成能都是负的, 相对于纯硅烯来说可以稳定存在. Bader电荷分析表明, 电荷从碱金属原子转移至硅原子. 从成键方式来看, 硅烯与氢原子形成共价键, 而与碱金属原子之间形成的键主要是离子性成键, 但还存在部分共价关联成分. 能带计算表明, 锂原子饱和吸附在硅烯形成的复合物SiLi是直接带隙的半导体, 带隙大小为0.34 eV. 其他碱金属饱和吸附在硅烯上形成的复合物都表现为金属性.  相似文献   

6.
王伟华  侯新蕊 《发光学报》2018,39(12):1674-1678
基于密度泛函理论,采用第一性原理的方法计算H修饰边缘不同宽度硼稀纳米带的电荷密度、电子能带结构、总态密度和分波态密度。结果表明,硼烯纳米带的宽度大小影响着材料的导电性能,宽度5的硼烯纳米带是间接带隙简并半导体,带隙值为0.674 eV,而宽度7的硼烯纳米带却具有金属材料的性质。分波态密度表明,宽度5的硼烯纳米带的费米能级附近主要是由B-2s、2p电子态贡献,H-1s主要贡献于下价带且具有局域性,消除了材料边缘的不稳定性。宽度7的B-2p和H-1s电子态贡献的导带和价带处于主导地位,费米能级附近B-2p和H-1s电子态的杂化效应影响材料的整体发光性能。  相似文献   

7.
栾晓玮  孙建平  王凡嵩  韦慧兰  胡艺凡 《物理学报》2019,68(2):26802-026802
锑烯(antimonene)是继石墨烯和磷烯之后出现的新型二维材料,在锂离子电池等领域受到关注.本文基于第一性原理的密度泛函理论,计算研究了锑烯对Li原子的吸附特性,包括Li原子的最稳定吸附构型、吸附密度以及吸附Li原子的扩散路径.结果表明:Li原子最稳定的吸附位置位于谷位,即底层Sb原子之上、顶层三个Sb原子中心位置,吸附能为1.69 eV,吸附距离为2.81?;能带计算发现,锑烯为带隙宽度1.08 eV的间接带隙半导体,吸附Li原子后费米能级上升进入导带,呈现出金属性;原子分波态密度分析发现, Sb原子的p电子态和Li原子的p和s电子态形成明显的共振交叠,表现出杂化成键的特征;随着吸附Li原子数量增加,锑烯晶格结构和电子结构发生较大变化.通过微动弹性带方法计算发现, Li原子在锑烯表面的扩散势垒为0.07 eV,较小的势垒高度有利于快速充放电过程.  相似文献   

8.
锗基集成电子学的发展潜力源于其极高的载流子迁移率以及与现有的硅基和锗基半导体工业的兼容性,而锗烯微小带隙能带特点极大程度地阻碍其应用.因此,在不降低载流子迁移率的情况下,打开一个相当大的带隙是其应用于逻辑电路中首先要解决的问题.本文采用范德瓦耳斯力修正的密度泛函理论计算方法,研究了电场作用下有机分子吸附和衬底对锗烯原子结构和电学性质的影响.研究结果表明,有机分子吸附和衬底通过弱相互作用破坏了锗烯亚晶格的对称性,从而在狄拉克点上打开了相当大的带隙.苯/锗烯和六氟苯/锗烯体系均在K点打开了带隙.当使用表面完全氢化的锗烯(锗烷HGeH)衬底时,苯/锗烯/HGeH和六氟苯/锗烯/HGeH体系的带隙可进一步变宽,带隙值分别为0.152和0.105 eV.在外电场作用下,上述锗烯体系可实现大范围的近似线性可调谐带隙.更重要的是,载流子迁移率在很大程度上得以保留.本文提出了一种有效的可调控锗烯带隙的设计方法,为锗烯在场效应管和其他纳米电子学器件中的应用提供了重要的理论指导.  相似文献   

9.
杨硕  程鹏  陈岚  吴克辉 《物理学报》2017,66(21):216805-216805
硅烯是一种零能隙的狄拉克费米子材料,对其能带结构的有效调控进而打开带隙是硅烯进一步器件化的基础.而化学功能化是调控二维材料的结构和电子性质的一种有效方法.本文简要介绍了近几年在硅烯的化学功能化方面取得的进展,主要包括硅烯的氢化、氧化、氯化以及其他几种可能的化学修饰方法.  相似文献   

10.
BaZrO3和CaZrO3能带和光学性质的第一性原理研究   总被引:1,自引:1,他引:0  
采用基于密度泛函理论基础上的CASTEP软件包,计算了BaZrO3和CaZrO3的能带以及光学性质.计算得到BaZrO3直接带隙和间接带隙分别为3.49 eV和3.23eV,CaZrO3直接带隙和间接带隙分别为3.73 eV和3.38 eV.对这两种材料的介电函数、吸收系数、反射系数、折射系数、湮灭系数和能量损失系数等光学系数进行了计算,并基于电子能带对光学性质进行了解释.得出,光学特性的异同是由于其内部微观结构上的异同所引起的.  相似文献   

11.
《Physics letters. A》2020,384(32):126826
In this paper, hydrogenation is used for the generation of band gap in silicene and the hydrogenated silicene is then studied for its spintronic application. Upon hydrogenation, silicene transforms into a wide band gap material with a band gap of 3.32 eV. Parameters like magneto-resistance and spin-filtering efficiency of magnetic tunnel junction (MTJ) with CrO2 as semi-metallic electrodes and hydrogenated silicene as scattering region are found to increase compared to pristine silicene as scattering region. The simulation results show that the magneto-resistance of hydrogenated silicene remains above 85% (higher than the pristine counterpart) for the entire bias range. In addition, the spin-filtering efficiency in hydrogenated silicene reaches a value as high as 96% whereas in case of pristine silicene it remains below 90% for the entire bias range.  相似文献   

12.
The structural, electronic and dielectric properties of mono and bilayer buckled silicene sheets are investigated using density functional theory. A comparison of stabilities, electronic structure and effect of external electric field are investigated for AA and AB-stacked bilayer silicene. It has been found that there are no excitations of electrons i.e. plasmons at low energies for out-of-plane polarization. While for AB-stacked bilayer silicene 1.48 eV plasmons for in-plane polarization is found, a lower value compared to 2.16 eV plasmons for monolayer silicene. Inter-band transitions and plasmons in both bilayer and monolayer silicene are found relatively at lower energies than graphene. The calculations suggest that the band gap can be opened up and varied over a wide range by applying external electric field for bilayer silicene. In infra-red region imaginary part of dielectric function for AB-stacked buckled bilayer silicene shows a broad structure peak in the range of 75–270 meV compared to a short structure peak at 70 meV for monolayer silicene and no structure peaks for AA-stacked bilayer silicene. On application of external electric field the peaks are found to be blue-shifted in infra-red region. With the help of imaginary part of dielectric function and electron energy loss function effort has been made to understand possible interband transitions in both buckled bilayer silicene and monolayer silicene.  相似文献   

13.
Using density functional theory (DFT) with both the generalized gradient approximation (GGA) and hybrid functionals, we have investigated the structural, electronic and magnetic properties of a two-dimensional hydrogenated silicon-based material. The compounds, i.e. silicene, full- and half-hydrogenated silicene, are studied and their properties are compared. Our results suggest that silicene is a gapless semimetal. The coverage and arrangement of the absorbed hydrogen atoms on silicene influence significantly the characteristics of the resulting band structures, such as the direct/indirect band gaps or metallic/semiconducting features. Moreover, it is interesting to see that half-hydrogenated silicene with chair-like structure is shown to be a ferromagnetic semiconductor.  相似文献   

14.
We present first principles theory calculations on the mechanical and electronic properties of silicene and silicane structure under uniaxial tensile strain along different directions. Chirality effect is more significant in the mechanical properties of silicene than those of silicane. Different failure mechanisms are identified. A small band gap (up to 0.8 eV) is developed from zero with silicene structure under uniaxial tension and vanishes before the structure reaches its in-plane ultimate strength. However, a pre-existing band gap (2.39 eV) exists with silicane structure and decreases to zero with the increasing tensile strain without chirality effects.  相似文献   

15.
Electronic properties and STM topographical images of X (=F, H, O) functionalized silicene and germanene have been investigated by introducing various kind of vacancy clusters and chain patterns in monolayers within density functional theory (DFT) framework. The relative ease of formation of vacancy clusters and chain patterns is found to be energetically most favorable in hydrogenated silicene and germanene. F- and H-functionalized silicene and germanene are direct bandgap semiconducting with bandgap ranging between 0.1–1.9 eV, while O-functionalized monolayers are metallic in nature. By introducing various vacancy clusters and chain patterns in both silicene and germanene, the electronic and magnetic properties get modified in significant manner e.g. F- and H-functionalized silicene and germanene with hexagonal and rectangle vacancy clusters are non-magnetic semiconductors with modified bandgap values while pentagonal and triangle vacancy clusters induce metallicity and magnetic character in monolayers; hexagonal vacancy chain patterns induce direct-to-indirect gap transition while zigzag vacancy chain patterns retain direct bandgap nature of monolayers. Calculated STM topographical images show distinctly different characteristics for various type of vacancy clusters and chain patterns which may be used as electronic fingerprints to identify various vacancy patterns in silicene and germanene created during the process of functionalization.  相似文献   

16.
By using first-principles calculations based on HSE06 hybrid functional, the structural, electronic, and optical properties of CuYSe2 as a low cost absorber material have been studied. Our results show that CuYSe2 is a semiconductor with indirect band gap of 1.46 eV and optical band gap of 2.00 eV. Especially, an intermediate band has been found in Ga and In alloyed CuYSe2, respectively, which can be served as a stepping stone to optical absorption on low energy photons. Therefore, Ga and In alloyed CuYSe2 with an intermediate band as a new absorber material have been proposed.  相似文献   

17.
基于密度泛函理论的第一性原理计算方法,我们研究了氢化、氟化及氢氟化五边形石墨烯双层对其电子性能的调控.计算结果表明,氢化和氟化的五边形石墨烯双层可分别在价带顶及导带底形成局域的电子态而显著降低带隙.基于这一特性,我们进一步研究氢氟化的五边形石墨烯双层结构对电子能带的影响,并且发现通过调控氢氟化覆盖度能够有效调节带隙,进而实现五边形石墨烯双层从半导体到金属态的转变.  相似文献   

18.
In this work, we performed first principles calculations based on self-consistent charge density functional tight-binding to investigate different mechanisms of band gap tuning of silicene. We optimized structures of silicene sheet, functionalized silicene with H, CH3 and F groups and nanoribbons with the edge of zigzag and armchair. Then we calculated electronic properties of silicene, functionalized silicene under uniaxial elastic strain, silicene nanoribbons and silicene under external electrical fields. It is found that the bond length and buckling value for relaxed silicene is agreeable with experimental and other theoretical values. Our results show that the band gap opens by functionalization of silicene. Also, we found that the direct band gap at K point for silicene changed to the direct band gap at the gamma point. Also, the functionalized silicene band gap decrease with increasing of the strain. For all sizes of the zigzag silicene nanoribbons, the band gap is near zero, while an oscillating decay occurs for the band gap of the armchair nanoribbons with increasing the nanoribbons width. At finally, it can be seen that the external electric field can open the band gap of silicene. We found that by increasing the electric field magnitude the band gap increases.  相似文献   

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