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Published in: Journal of Materials Science 22/2019

01-08-2019 | Computation & theory

Toward obtaining 2D and 3D and 1D PtPN with pentagonal pattern

Authors: Duo Wang, Lei Liu, Houlong L. Zhuang

Published in: Journal of Materials Science | Issue 22/2019

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Abstract

We apply an alloying strategy to single-layer PtN2 and PtP2, aiming to obtain a single-layer Pt–P–N alloy with a relatively low formation energy with reference to its bulk structure. We perform structure search based on a cluster-expansion method and predict single-layer and bulk PtPN consisting of pentagonal networks. The formation energy of single-layer PtPN is significantly lower in comparison with that of single-layer PtP2. The predicted bulk structure of PtPN adopts a structure that is similar to the pyrite structure. We also find that single-layer pentagonal PtPN, unlike PtN2 and PtP2, exhibits a sizable, direct PBE band gap of 0.84 eV. Furthermore, the band gap of single-layer pentagonal PtPN calculated with the hybrid density functional theory is 1.60 eV, which is within visible light spectrum and promising for optoelectronics applications. In addition to predicting PtPN in the 2D and 3D forms, we study the flexural rigidity and electronic structure of PtPN in the nanotube form. We find that single-layer PtPN has similar flexural rigidity to that of single-layer carbon and boron nitride nanosheets and that the band gaps of PtPN nanotubes depend on their radii. Our work shed light on obtaining an isolated 2D planar, pentagonal PtPN nanosheet from its 3D counterpart and on obtaining 1D nanotubes with tunable band gaps.

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Literature
1.
go back to reference Farmer DB, Lin Y-M, Avouris P (2010) Graphene field-effect transistors with self-aligned gates. Appl Phys Lett 97:013103CrossRef Farmer DB, Lin Y-M, Avouris P (2010) Graphene field-effect transistors with self-aligned gates. Appl Phys Lett 97:013103CrossRef
2.
go back to reference Eda G, Fanchini G, Chhowalla M (2008) Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat Nanotechnol 3:270CrossRef Eda G, Fanchini G, Chhowalla M (2008) Large-area ultrathin films of reduced graphene oxide as a transparent and flexible electronic material. Nat Nanotechnol 3:270CrossRef
3.
go back to reference Wu J, Becerril HA, Bao Z, Liu Z, Chen Y, Peumans P (2008) Organic solar cells with solution-processed graphene transparent electrodes. Appl Phys Lett 92:237 Wu J, Becerril HA, Bao Z, Liu Z, Chen Y, Peumans P (2008) Organic solar cells with solution-processed graphene transparent electrodes. Appl Phys Lett 92:237
4.
go back to reference Dean JJ, van Driel HM (2009) Second harmonic generation from graphene and graphitic films. Appl Phys Lett 95:261910CrossRef Dean JJ, van Driel HM (2009) Second harmonic generation from graphene and graphitic films. Appl Phys Lett 95:261910CrossRef
5.
go back to reference Xia F, Mueller T, Lin YM, Valdes-Garcia A, Avouris P (2009) Ultrafast graphene photodetector. Nat Nanotechnol 4:839CrossRef Xia F, Mueller T, Lin YM, Valdes-Garcia A, Avouris P (2009) Ultrafast graphene photodetector. Nat Nanotechnol 4:839CrossRef
6.
go back to reference Wang H, Xu Z, Kohandehghan A, Li Z, Cui K, Tan X, Stephenson TJ, King’Ondu CK, Holt CM, Olsen BC (2013) Interconnected carbon nanosheets derived from hemp for ultrafast supercapacitors with high energy. ACS Nano 7:5131–5141CrossRef Wang H, Xu Z, Kohandehghan A, Li Z, Cui K, Tan X, Stephenson TJ, King’Ondu CK, Holt CM, Olsen BC (2013) Interconnected carbon nanosheets derived from hemp for ultrafast supercapacitors with high energy. ACS Nano 7:5131–5141CrossRef
7.
go back to reference Raccichini R, Varzi A, Passerini S, Scrosati B (2015) The role of graphene for electrochemical energy storage. Nat Mater 14:271CrossRef Raccichini R, Varzi A, Passerini S, Scrosati B (2015) The role of graphene for electrochemical energy storage. Nat Mater 14:271CrossRef
8.
go back to reference Liu Q, Chen C, Du M, Wu Y, Ren C, Ding K, Song M, Huang C (2018) Porous hexagonal boron nitride sheets: effect of hydroxyl and secondary amino groups on photocatalytic hydrogen evolution. ACS Appl Nano Mater 1:4566–4575CrossRef Liu Q, Chen C, Du M, Wu Y, Ren C, Ding K, Song M, Huang C (2018) Porous hexagonal boron nitride sheets: effect of hydroxyl and secondary amino groups on photocatalytic hydrogen evolution. ACS Appl Nano Mater 1:4566–4575CrossRef
9.
go back to reference Li L, Gong P, Sheng D, Wang S, Wang W, Zhu X, Shi X, Wang F, Han W, Yang S (2018) Highly in-plane anisotropic 2D GeAs2 for polarization-sensitive photodetection. Adv Mater 30:1804541CrossRef Li L, Gong P, Sheng D, Wang S, Wang W, Zhu X, Shi X, Wang F, Han W, Yang S (2018) Highly in-plane anisotropic 2D GeAs2 for polarization-sensitive photodetection. Adv Mater 30:1804541CrossRef
11.
go back to reference Liu Z, Wang H, Sun J, Sun R, Wang Z, Yang J (2018) Penta-Pt2N4: an ideal two-dimensional material for nanoelectronics. Nanoscale 10:16169–16177CrossRef Liu Z, Wang H, Sun J, Sun R, Wang Z, Yang J (2018) Penta-Pt2N4: an ideal two-dimensional material for nanoelectronics. Nanoscale 10:16169–16177CrossRef
12.
go back to reference Liu L, Zhuang HL (2018) PtP2: an example of exploring the hidden Cairo tessellation in the pyrite structure for discovering novel two-dimensional materials. Phys Rev Mater 2:114003CrossRef Liu L, Zhuang HL (2018) PtP2: an example of exploring the hidden Cairo tessellation in the pyrite structure for discovering novel two-dimensional materials. Phys Rev Mater 2:114003CrossRef
13.
go back to reference Yuan J-H, Song Y-Q, Chen Q, Xue K-H, Miao X-S (2019) Single-layer planar penta-X2N4 (X = Ni, Pd and Pt) as direct-bandgap semiconductors from first principle calculations. Appl Surf Sci 469:456–462CrossRef Yuan J-H, Song Y-Q, Chen Q, Xue K-H, Miao X-S (2019) Single-layer planar penta-X2N4 (X = Ni, Pd and Pt) as direct-bandgap semiconductors from first principle calculations. Appl Surf Sci 469:456–462CrossRef
14.
go back to reference Zhao K, Li X, Wang S, Wang Q (2019) 2D planar penta-MN 2 (M = Pd, Pt) sheets identified through structure search. Phys Chem Chem Phys 21:246–251CrossRef Zhao K, Li X, Wang S, Wang Q (2019) 2D planar penta-MN 2 (M = Pd, Pt) sheets identified through structure search. Phys Chem Chem Phys 21:246–251CrossRef
15.
go back to reference Liu L, Wang D, Lakamsani S, Huang W, Price C, Zhuang HL (2019) Dimension engineering of single-layer PtN2 with the Cairo tessellation. J Appl Phys 125:204302CrossRef Liu L, Wang D, Lakamsani S, Huang W, Price C, Zhuang HL (2019) Dimension engineering of single-layer PtN2 with the Cairo tessellation. J Appl Phys 125:204302CrossRef
16.
go back to reference Crowhurst JC, Goncharov AF, Sadigh B, Evans CL, Morrall PG, Ferreira JL, Nelson A (2006) Synthesis and characterization of the nitrides of platinum and iridium. Science 311:1275–1278CrossRef Crowhurst JC, Goncharov AF, Sadigh B, Evans CL, Morrall PG, Ferreira JL, Nelson A (2006) Synthesis and characterization of the nitrides of platinum and iridium. Science 311:1275–1278CrossRef
17.
go back to reference Thomassen L (1929) Über kristallstrukturen einiger binärer verbindungen der platinmetalle II. Z Phys Chem 4:277–287 Thomassen L (1929) Über kristallstrukturen einiger binärer verbindungen der platinmetalle II. Z Phys Chem 4:277–287
18.
go back to reference Kresse G, Furthmüller J (1996) Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys Rev B 54:11169CrossRef Kresse G, Furthmüller J (1996) Efficient iterative schemes for ab initio total-energy calculations using a plane-wave basis set. Phys Rev B 54:11169CrossRef
19.
go back to reference Perdew JP, Burke K, Ernzerhof M (1996) Generalized gradient approximation made simple. Phys Rev Lett 77:3865CrossRef Perdew JP, Burke K, Ernzerhof M (1996) Generalized gradient approximation made simple. Phys Rev Lett 77:3865CrossRef
20.
21.
go back to reference Kresse G, Joubert D (1999) From ultrasoft pseudopotentials to the projector augmented-wave method. Phys Rev B 59:1758CrossRef Kresse G, Joubert D (1999) From ultrasoft pseudopotentials to the projector augmented-wave method. Phys Rev B 59:1758CrossRef
22.
go back to reference Monkhorst HJ, Pack JD (1976) Special points for Brillouin-zone integrations. Phys Rev B 13:5188CrossRef Monkhorst HJ, Pack JD (1976) Special points for Brillouin-zone integrations. Phys Rev B 13:5188CrossRef
23.
go back to reference Van De Walle A, Asta M, Ceder G (2002) The alloy theoretic automated toolkit: a user guide. Calphad 26:539–553CrossRef Van De Walle A, Asta M, Ceder G (2002) The alloy theoretic automated toolkit: a user guide. Calphad 26:539–553CrossRef
24.
go back to reference Mann C, McLoud-Mann J, Von Derau D (2018) Convex pentagons that admit i-block transitive tilings. Geom Dedic 194:141–167CrossRef Mann C, McLoud-Mann J, Von Derau D (2018) Convex pentagons that admit i-block transitive tilings. Geom Dedic 194:141–167CrossRef
25.
go back to reference Ge HJS, Ernzerhof M (2006) Erratum: “Hybrid functionals based on a screened Coulomb potential” [J Chem Phys 118, 8207 (2003)]. J Chem Phys 124:219906CrossRef Ge HJS, Ernzerhof M (2006) Erratum: “Hybrid functionals based on a screened Coulomb potential” [J Chem Phys 118, 8207 (2003)]. J Chem Phys 124:219906CrossRef
26.
go back to reference Singh AK, Mathew K, Zhuang HL, Hennig RG (2015) Computational screening of 2D materials for photocatalysis. J Phys Chem Lett 6:1087–1098CrossRef Singh AK, Mathew K, Zhuang HL, Hennig RG (2015) Computational screening of 2D materials for photocatalysis. J Phys Chem Lett 6:1087–1098CrossRef
27.
go back to reference Fu D, Zhao X, Zhang Y-Y, Li L, Xu H, Jang A-R, Yoon SI, Song P, Poh SM, Ren T (2017) Molecular beam epitaxy of highly crystalline monolayer molybdenum disulfide on hexagonal boron nitride. J Am Chem Soc 139:9392–9400CrossRef Fu D, Zhao X, Zhang Y-Y, Li L, Xu H, Jang A-R, Yoon SI, Song P, Poh SM, Ren T (2017) Molecular beam epitaxy of highly crystalline monolayer molybdenum disulfide on hexagonal boron nitride. J Am Chem Soc 139:9392–9400CrossRef
28.
go back to reference Cherian R, Mahadevan P (2007) Elastic properties of carbon nanotubes: an atomistic approach. J Nanosci Nanotechnol 7:1779–1782CrossRef Cherian R, Mahadevan P (2007) Elastic properties of carbon nanotubes: an atomistic approach. J Nanosci Nanotechnol 7:1779–1782CrossRef
29.
go back to reference Landau LD, Lifshitz EM (1970) Theory of elasticity, 2nd edn. Pergamon Press, Oxford, pp 62–66 Landau LD, Lifshitz EM (1970) Theory of elasticity, 2nd edn. Pergamon Press, Oxford, pp 62–66
30.
go back to reference Kudin KN, Scuseria GE, Yakobson BI (2001) C2F, BN, and C nanoshell elasticity from ab initio computations. Phys Rev B 64:235406CrossRef Kudin KN, Scuseria GE, Yakobson BI (2001) C2F, BN, and C nanoshell elasticity from ab initio computations. Phys Rev B 64:235406CrossRef
31.
go back to reference Ru CQ (2000) Effective bending stiffness of carbon nanotubes. Phys Rev B 62:9973–9976CrossRef Ru CQ (2000) Effective bending stiffness of carbon nanotubes. Phys Rev B 62:9973–9976CrossRef
32.
go back to reference Pantano A, Parks DM, Boyce MC (2004) Mechanics of deformation of single- and multi-wall carbon nanotubes. J Mech Phys Solids 52:789–821CrossRef Pantano A, Parks DM, Boyce MC (2004) Mechanics of deformation of single- and multi-wall carbon nanotubes. J Mech Phys Solids 52:789–821CrossRef
33.
go back to reference Janas D (2018) Towards monochiral carbon nanotubes: a review of progress in the sorting of single-walled carbon nanotubes. Mater Chem Front 2:36–63CrossRef Janas D (2018) Towards monochiral carbon nanotubes: a review of progress in the sorting of single-walled carbon nanotubes. Mater Chem Front 2:36–63CrossRef
34.
go back to reference Qian S, Sheng X, Xu X, Wu Y, Lu N, Qin Z, Wang J, Zhang C, Feng E, Huang W (2019) Penta-MX 2 (M = Ni, Pd and Pt; X = P and As) monolayers: direct band-gap semiconductors with high carrier mobility. J Mater Chem C 7:3569–3575CrossRef Qian S, Sheng X, Xu X, Wu Y, Lu N, Qin Z, Wang J, Zhang C, Feng E, Huang W (2019) Penta-MX 2 (M = Ni, Pd and Pt; X = P and As) monolayers: direct band-gap semiconductors with high carrier mobility. J Mater Chem C 7:3569–3575CrossRef
Metadata
Title
Toward obtaining 2D and 3D and 1D PtPN with pentagonal pattern
Authors
Duo Wang
Lei Liu
Houlong L. Zhuang
Publication date
01-08-2019
Publisher
Springer US
Published in
Journal of Materials Science / Issue 22/2019
Print ISSN: 0022-2461
Electronic ISSN: 1573-4803
DOI
https://doi.org/10.1007/s10853-019-03886-x

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