2020
DOI: 10.1039/d0nj01022g
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Sensing the polar molecules MH3 (M = N, P, or As) with a Janus NbTeSe monolayer

Abstract: The unique intrinsic electric field and prominent physical and chemical properties of Janus TMDs have attracted extensive attention for device applications.

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Cited by 24 publications
(15 citation statements)
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“…This viewpoint paper has been initiated at the Discussion Meeting "Quantum Crystallography:C urrent Developments and Future Perspectives" (Nancy,F rance, 19-20 June 2017) under the umbrella of the European Centre for Atomic and Molecular Calculation (CECAM,C entre EuropØen de Calcul Atomiquee tM olØculaire), which was organized to discusst he meaninga nd perspectiveso fq uantum crystallography in light of the recenta nd significant increasei nt he use of this term and relatedt echniques in the scientific literature ( Figure 1). [55][56][57][58] Therefore, in the following section, we will show how this increased interesti nQ Cr manifestsi tself in method developments and applications that are not necessarily within the originald efinition of QCr or in the framework of conventional multipole-based experimental charged ensity research as discussed above.I nf act, if all fields anda pplications where quantum chemistry and experimental approachesb ased on diffraction ands cattering mutuallye nrich each other are to be accommodated within au nified research area, the original definition of QCr is too narrow.I nt his light, in section3 we will present andd iscuss the differentp oints of view on QCr as they emerged during the recent CECAM meeting. This will highlight different ways in whicht he rapid and fruitful scientific evolutions touched upon in section2 could eventuallyl ead to ab roadened definition of quantum crystallography and to the foundation of an ew and flourishing researchf ield and community (see Figure 1).…”
Section: Introductionmentioning
confidence: 99%
“…This viewpoint paper has been initiated at the Discussion Meeting "Quantum Crystallography:C urrent Developments and Future Perspectives" (Nancy,F rance, 19-20 June 2017) under the umbrella of the European Centre for Atomic and Molecular Calculation (CECAM,C entre EuropØen de Calcul Atomiquee tM olØculaire), which was organized to discusst he meaninga nd perspectiveso fq uantum crystallography in light of the recenta nd significant increasei nt he use of this term and relatedt echniques in the scientific literature ( Figure 1). [55][56][57][58] Therefore, in the following section, we will show how this increased interesti nQ Cr manifestsi tself in method developments and applications that are not necessarily within the originald efinition of QCr or in the framework of conventional multipole-based experimental charged ensity research as discussed above.I nf act, if all fields anda pplications where quantum chemistry and experimental approachesb ased on diffraction ands cattering mutuallye nrich each other are to be accommodated within au nified research area, the original definition of QCr is too narrow.I nt his light, in section3 we will present andd iscuss the differentp oints of view on QCr as they emerged during the recent CECAM meeting. This will highlight different ways in whicht he rapid and fruitful scientific evolutions touched upon in section2 could eventuallyl ead to ab roadened definition of quantum crystallography and to the foundation of an ew and flourishing researchf ield and community (see Figure 1).…”
Section: Introductionmentioning
confidence: 99%
“…The new family of 2D materials named Janus transition metal chalcogenides (TMDs) monolayer has been recently synthesized [ 32 , 33 ]. Due to the asymmetry sandwich combinations (i.e., X-M-Y, where M = transition element, X, Y = chalcogen atoms but X ≠ Y) of Janus TMDs monolayer have very interesting physical and chemical properties [ 34 , 35 , 36 , 37 , 38 , 39 ]. Additionally, due to the quite different atomic radius and electronegativities of X and Y atoms, the charge distributions of the layer X-M and M-Y in Janus monolayer are significantly different [ 34 , 35 , 40 ].…”
Section: Introductionmentioning
confidence: 99%
“…Due to the asymmetry sandwich combinations (i.e., X-M-Y, where M = transition element, X, Y = chalcogen atoms but X ≠ Y) of Janus TMDs monolayer have very interesting physical and chemical properties [ 34 , 35 , 36 , 37 , 38 , 39 ]. Additionally, due to the quite different atomic radius and electronegativities of X and Y atoms, the charge distributions of the layer X-M and M-Y in Janus monolayer are significantly different [ 34 , 35 , 40 ]. As a consequence, Janus MXY monolayer generates interior electric fields transverse to the surface [ 41 ].…”
Section: Introductionmentioning
confidence: 99%
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“…The results show all molecules in top chamber or bottom chamber acts as the charge acceptor to calabash fullerene. Undoubtedly, the small quantity of charge transfer implies the weak interaction, [ 28 ] which reasonably indicates the possibility in different insert positions in calabash fullerene in Figure 1 as well as potential applications of small‐molecule sensors.…”
Section: Resultsmentioning
confidence: 95%