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Journal Abstract Search


338 related items for PubMed ID: 30238747

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  • 2. Structures, stabilities and piezoelectric properties of Janus gallium oxides and chalcogenides monolayers.
    Cui Y, Peng L, Sun L, Li M, Zhang X, Huang Y.
    J Phys Condens Matter; 2020 Feb 20; 32(8):08LT01. PubMed ID: 31675733
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  • 6. Large In-Plane and Vertical Piezoelectricity in Janus Transition Metal Dichalchogenides.
    Dong L, Lou J, Shenoy VB.
    ACS Nano; 2017 Aug 22; 11(8):8242-8248. PubMed ID: 28700210
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  • 7. Superhigh out-of-plane piezoelectricity, low thermal conductivity and photocatalytic abilities in ultrathin 2D van der Waals heterostructures of boron monophosphide and gallium nitride.
    Mohanta MK, Rawat A, Dimple, Jena N, Ahammed R, De Sarkar A.
    Nanoscale; 2019 Nov 21; 11(45):21880-21890. PubMed ID: 31697290
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  • 8. Two-Dimensional In2X2X' (X and X' = S, Se, and Te) Monolayers with an Intrinsic Electric Field for High-Performance Photocatalytic and Piezoelectric Applications.
    Wang P, Liu H, Zong Y, Wen H, Xia JB, Wu HB.
    ACS Appl Mater Interfaces; 2021 Jul 28; 13(29):34178-34187. PubMed ID: 34258989
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  • 9. Tunable Rashba spin splitting in Janus transition-metal dichalcogenide monolayers via charge doping.
    Chen J, Wu K, Ma H, Hu W, Yang J.
    RSC Adv; 2020 Feb 07; 10(11):6388-6394. PubMed ID: 35495998
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  • 10. Two-dimensional pentagonal CrX (X = S, Se or Te) monolayers: antiferromagnetic semiconductors for spintronics and photocatalysts.
    Chen W, Kawazoe Y, Shi X, Pan H.
    Phys Chem Chem Phys; 2018 Jul 11; 20(27):18348-18354. PubMed ID: 29938258
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  • 12. Tuning the structural, electronic and dynamical properties of Janus M4X3Y3 (M = Pd, Ni and Co; X,Y = S, Se and Te) monolayers: a DFT study.
    Eren I, Akgenc B.
    Phys Chem Chem Phys; 2021 Sep 29; 23(37):21139-21147. PubMed ID: 34528046
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  • 13. Enhanced out-of-plane electromechanical response of Janus ZrSeO.
    Pham TH, Ullah H, Shafique A, Kim HJ, Shin YH.
    Phys Chem Chem Phys; 2021 Aug 04; 23(30):16289-16295. PubMed ID: 34312641
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  • 14. Two-dimensional Janus MGeSiP4 (M = Ti, Zr, and Hf) with an indirect band gap and high carrier mobilities: first-principles calculations.
    Hiep NT, Anh NPQ, Phuc HV, Nguyen CQ, Hieu NN, Vi VTT.
    Phys Chem Chem Phys; 2023 Mar 22; 25(12):8779-8788. PubMed ID: 36912122
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  • 15. Symmetry-breaking induced large piezoelectricity in Janus tellurene materials.
    Chen Y, Liu J, Yu J, Guo Y, Sun Q.
    Phys Chem Chem Phys; 2019 Jan 17; 21(3):1207-1216. PubMed ID: 30565590
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  • 16. Electronic, mechanical, optical and photocatalytic properties of two-dimensional Janus XGaInY (X, Y ;= S, Se and Te) monolayers.
    Ahmad I, Shahid I, Ali A, Gao L, Cai J.
    RSC Adv; 2021 May 06; 11(28):17230-17239. PubMed ID: 35479691
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  • 17. A first-principles study on the electronic, piezoelectric, and optical properties and strain-dependent carrier mobility of Janus TiXY (X ≠ Y, X/Y = Cl, Br, I) monolayers.
    Yang Q, Zhang T, Hu CE, Chen XR, Geng HY.
    Phys Chem Chem Phys; 2022 Dec 21; 25(1):274-285. PubMed ID: 36475497
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  • 18. Two-Dimensional GeC/MXY (M = Zr, Hf; X, Y = S, Se) Heterojunctions Used as Highly Efficient Overall Water-Splitting Photocatalysts.
    Wang G, Xie W, Guo S, Chang J, Chen Y, Long X, Zhou L, Ang YS, Yuan H.
    Molecules; 2024 Jun 12; 29(12):. PubMed ID: 38930861
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  • 19. Rational design of 2D Janus P3m1 M2N3 (M = Cu, Zr, and Hf) and their surface-functionalized derivatives: ferromagnetic, piezoelectric, and photocatalytic properties.
    Zhang H, Guégan F, Wang J, Frapper G.
    Phys Chem Chem Phys; 2024 May 22; 26(20):14675-14683. PubMed ID: 38716510
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  • 20. Ferro-piezoelectricity in emerging Janus monolayer BMX2 (M = Ga, In and X = S, Se): ab initio investigations.
    Bezzerga D, Haidar EA, Stampfl C, Mir A, Sahnoun M.
    Nanoscale Adv; 2023 Feb 28; 5(5):1425-1432. PubMed ID: 36866264
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