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Large second-harmonic generation and linear electro-optic effect in trigonal selenium and tellurium

机译:三角硒和碲的大二次谐波产生和线性电光效应

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摘要

Trigonal selenium and tellurium crystalize in helical chainlike structures and thus possess interesting properties such as nontrivial band topology, gyrotropic effects, and nonlinear optical responses. By performing systematic density-functional-theory calculations with the generalized gradient approximation plus scissors correction, we study their linear and nonlinear optical (NLO) properties. We find that both materials exhibit large second-harmonic generation (SHG) and linear electro-optic (LEO) effect. In particular, tellurium has the huge SHG coefficient (chi((2))(xxx)) in the photon energy range of 0 similar to 3 eV with the maximum magnitude being about 16 times larger than that of GaN, a widely used NLO material. Tellurium is also found to possess the gigantic static SHG coefficient chi((2))(xyz), which is up to 100 times larger than that of GaN. On the other hand, selenium exhibits the large LEO coefficient r(xxx)(0), which is more than six times larger than that of GaN. Thus, tellurium and selenium may find valuable applications in NLO and LEO devices such as frequency conversion, electro-optical switches, and light signal modulators. Interestingly, our calculations also reveal that for each material, the chi((2))(xxx) values for the two helical structures are equal but the chi((2))(xyz) values differ in sign, suggesting that the SHG spectroscopy is a useful probe of their chirality. The calculated static and optical dielectric constants as well as SHG coefficients at the CO2 laser frequency are in good agreement with the available experiments. Finally, much stronger NLO responses of selenium and tellurium compared with the semiconductors with similar band gaps are attributed to their quasi-one-dimensional structures with directional covalent bonding and lone-pair electrons. These findings will help the search for new materials with large NLO coefficients.
机译:Trigonal硒和碲在螺旋链状结构中结晶,因此具有有趣的性质,例如非计带带拓扑,旋转效应和非线性光学响应。通过使用广义梯度近似加剪刀校正进行系统密度 - 功能 - 理论计算,我们研究了它们的线性和非线性光学(NLO)属性。我们发现两种材料都表现出大型二次谐波产生(SHG)和线性电光(LEO)效应。特别地,碲在0的光子能量范围内具有巨大的SHG系数(CHI((2))(XXX)),其与3eV相似,最大幅度大约比GaN大约16倍,是一种广泛使用的NLO材料。还发现碲还具有巨大的静态SHG系数Chi((2))(XYZ),其比GaN大的100倍。另一方面,硒具有大的Leo系数R(XXX)(0),其比GaN大的六倍以上。因此,碲和硒可以在NLO和LEO器件中找到有价值的应用,例如变频器,电光开关和光信号调制器。有趣的是,我们的计算还揭示了对于每种材料,两个螺旋结构的CHI((2))(XXX)值相等,但CHI((2))(XYZ)值在符号中不同,表明SHG光谱是他们性行为的有用探针。计算出的静电和光学介电常数以及CO2激光频率的SHG系数与可用实验良好。最后,与具有类似带间隙的半导体相比,与具有类似带空隙的半导体相比的更强大的NLO响应归因于它们的准一维结构,具有定向共价键合和孤牌电子。这些调查结果将帮助寻找具有大NLO系数的新材料。

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  • 来源
    《Physical review》 |2019年第3期|035202.1-035202.12|共12页
  • 作者单位

    Xiamen Univ Collaborat Innovat Ctr Optoelect Semicond & Effic Key Lab Low Dimens Condensed Matter Phys Jiujiang Res Inst Dept Educ Fujian Prov Dept Phys Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Collaborat Innovat Ctr Optoelect Semicond & Effic Key Lab Low Dimens Condensed Matter Phys Jiujiang Res Inst Dept Educ Fujian Prov Dept Phys Xiamen 361005 Fujian Peoples R China;

    Xiamen Univ Collaborat Innovat Ctr Optoelect Semicond & Effic Key Lab Low Dimens Condensed Matter Phys Jiujiang Res Inst Dept Educ Fujian Prov Dept Phys Xiamen 361005 Fujian Peoples R China|Fujian Prov Key Lab Theoret & Computat Chem Xiamen 361005 Fujian Peoples R China;

    Natl Taiwan Univ Dept Phys Taipei 10617 Taiwan|Natl Taiwan Univ Ctr Theoret Phys Taipei 10617 Taiwan|Natl Ctr Theoret Sci Phys Div Hsinchu 30013 Taiwan;

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