Phosphorene – The two-dimensional black phosphorous: Properties, synthesis and applications
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Indranil Lahiri | Karthick Mani | I. Lahiri | Apratim Khandelwal | Karthick Mani | Manohar H. Karigerasi | Apratim Khandelwal | Manohar Harsha Karigerasi
[1] Zonghai Chen,et al. Nanostructured Black Phosphorus/Ketjenblack-Multiwalled Carbon Nanotubes Composite as High Performance Anode Material for Sodium-Ion Batteries. , 2016, Nano letters.
[2] Xunyu Lu,et al. Preparation of Metal-Free Nitrogen-Doped Graphene Via Direct Electrochemical Exfoliation of Graphite in Ammonium Nitrate , 2015 .
[3] Zhixin Chen,et al. Synthesis of Large and Few Atomic Layers of Hexagonal Boron Nitride on Melted Copper , 2015, Scientific Reports.
[4] Zhen Zhu,et al. Semiconducting layered blue phosphorus: a computational study. , 2014, Physical review letters.
[5] Andras Kis,et al. Stretching and breaking of ultrathin MoS2. , 2011, ACS nano.
[6] Jun Wang,et al. Liquid exfoliation of solvent-stabilized few-layer black phosphorus for applications beyond electronics , 2015, Nature Communications.
[7] Hiroyuki Hirayama,et al. Epitaxial growth of silicene on ultra-thin Ag(111) films , 2014 .
[8] W. Choi,et al. Synthesis of Graphene and Its Applications: A Review , 2010 .
[9] P. Schmidt,et al. Au3SnP7@black phosphorus: an easy access to black phosphorus. , 2007, Inorganic chemistry.
[10] B. Gu,et al. Intrinsic anisotropy of thermal conductance in graphene nanoribbons , 2009, 0910.3267.
[11] Jun Dai,et al. Bilayer Phosphorene: Effect of Stacking Order on Bandgap and Its Potential Applications in Thin-Film Solar Cells. , 2014, The journal of physical chemistry letters.
[12] H. Nakano,et al. Synthesis and modification of silicon nanosheets and other silicon nanomaterials. , 2011, Chemistry.
[13] Artem R. Oganov,et al. Synthesis of borophenes: Anisotropic, two-dimensional boron polymorphs , 2015, Science.
[14] Qing Hua Wang,et al. Bi- and trilayer graphene solutions. , 2011, Nature nanotechnology.
[15] Deji Akinwande,et al. Two-dimensional flexible nanoelectronics , 2014, Nature Communications.
[16] K. Shepard,et al. Boron nitride substrates for high-quality graphene electronics. , 2010, Nature nanotechnology.
[17] Marcel Demarteau,et al. Ambipolar phosphorene field effect transistor. , 2014, ACS nano.
[18] Wei Ji,et al. High-mobility transport anisotropy and linear dichroism in few-layer black phosphorus , 2014, Nature communications.
[19] Ning Wei,et al. Thermal conductivities of single- and multi-layer phosphorene: a molecular dynamics study. , 2016, Nanoscale.
[20] M. Hersam,et al. Solvent exfoliation of electronic-grade, two-dimensional black phosphorus. , 2015, ACS nano.
[21] Binghai Yan,et al. Large-gap quantum spin Hall insulators in tin films. , 2013, Physical review letters.
[22] H. R. Krishnamurthy,et al. Monitoring dopants by Raman scattering in an electrochemically top-gated graphene transistor. , 2008, Nature nanotechnology.
[23] Chun Li,et al. Large-area synthesis of monolayer WS₂ and its ambient-sensitive photo-detecting performance. , 2015, Nanoscale.
[24] Adalberto Fazzio,et al. Switching a normal insulator into a topological insulator via electric field with application to phosphorene. , 2015, Nano letters.
[25] S. Yamaguchi,et al. Silicon nanosheets and their self-assembled regular stacking structure. , 2010, Journal of the American Chemical Society.
[26] Changfeng Chen,et al. Phosphorene: Fabrication, Properties, and Applications. , 2015, The journal of physical chemistry letters.
[27] Mark C Hersam,et al. The reemergence of chemistry for post-graphene two-dimensional nanomaterials. , 2015, ACS nano.
[28] J. Tour. Top-Down versus Bottom-Up Fabrication of Graphene-Based Electronics , 2014 .
[29] L. Lauhon,et al. Effective passivation of exfoliated black phosphorus transistors against ambient degradation. , 2014, Nano letters.
[30] Madan Dubey,et al. Silicene field-effect transistors operating at room temperature. , 2015, Nature nanotechnology.
[31] Qing Hua Wang,et al. Electronics and optoelectronics of two-dimensional transition metal dichalcogenides. , 2012, Nature nanotechnology.
[32] Richard Van Noorden. Production: Beyond sticky tape , 2012, Nature.
[33] Vikas Berry,et al. Electron-tunneling modulation in percolating network of graphene quantum dots: fabrication, phenomenological understanding, and humidity/pressure sensing applications. , 2013, Nano letters.
[34] W. Han. Anisotropic Hexagonal Boron Nitride Nanomaterials - Synthesis and Applications , 2010 .
[35] S. Haigh,et al. Production of few-layer phosphorene by liquid exfoliation of black phosphorus. , 2014, Chemical communications.
[36] Li Yang,et al. Strain-engineering the anisotropic electrical conductance of few-layer black phosphorus. , 2014, Nano letters.
[37] P. W. Bridgman. TWO NEW MODIFICATIONS OF PHOSPHORUS. , 1914 .
[38] C N R Rao,et al. Graphene analogues of BN: novel synthesis and properties. , 2010, ACS nano.
[39] R. Vaia,et al. Mechanism for Liquid Phase Exfoliation of MoS2 , 2016 .
[40] Chongwu Zhou,et al. Chemical Vapor Deposition Growth of Monolayer WSe2 with Tunable Device Characteristics and Growth Mechanism Study. , 2015, ACS nano.
[41] J. Coleman,et al. Two-Dimensional Nanosheets Produced by Liquid Exfoliation of Layered Materials , 2011, Science.
[42] Jannik C. Meyer,et al. The two-dimensional phase of boron nitride: Few-atomic-layer sheets and suspended membranes , 2008 .
[43] Fatemeh Khalili-Araghi,et al. Stable and Selective Humidity Sensing Using Stacked Black Phosphorus Flakes. , 2015, ACS nano.
[44] Yong-Wei Zhang,et al. Layer-dependent Band Alignment and Work Function of Few-Layer Phosphorene , 2014, Scientific reports.
[45] J. Coleman,et al. Liquid Exfoliation of Layered Materials , 2013, Science.
[46] S. Lau,et al. Solution‐Processable Ultrathin Black Phosphorus as an Effective Electron Transport Layer in Organic Photovoltaics , 2016 .
[47] J. Tarascon,et al. High rate capabilities Fe3O4-based Cu nano-architectured electrodes for lithium-ion battery applications , 2006, Nature materials.
[48] Hasan Sahin,et al. Tuning of the electronic and optical properties of single-layer black phosphorus by strain , 2014, 1411.1344.
[49] Zongfu Yu,et al. Extraordinary photoluminescence and strong temperature/angle-dependent Raman responses in few-layer phosphorene. , 2014, ACS nano.
[50] P. Ye,et al. Semiconducting black phosphorus: synthesis, transport properties and electronic applications. , 2014, Chemical Society Reviews.
[51] Yuri Grin,et al. Squeezing lone pairs: The A17 to A7 pressure-induced phase transition in black phosphorus , 2012 .
[52] Z. Yin,et al. A general method for the large-scale synthesis of uniform ultrathin metal sulphide nanocrystals , 2012, Nature Communications.
[53] Zhen Zhu,et al. Phase coexistence and metal-insulator transition in few-layer phosphorene: a computational study. , 2014, Physical review letters.
[54] Qing Tang,et al. Small molecules make big differences: molecular doping effects on electronic and optical properties of phosphorene , 2015, Nanotechnology.
[55] P. Chu,et al. Tunable photoluminescence from sheet-like black phosphorus crystal by electrochemical oxidation , 2015 .
[56] Andre K. Geim,et al. The rise of graphene. , 2007, Nature materials.
[57] Mianqi Xue,et al. Graphene as a conductive additive to enhance the high-rate capabilities of electrospun Li4Ti5O12 for lithium-ion batteries , 2010 .
[58] J. C. Jamieson. Crystal Structures Adopted by Black Phosphorus at High Pressures , 1963, Science.
[59] Hua Xu,et al. Optical Anisotropy of Black Phosphorus in the Visible Regime. , 2016, Journal of the American Chemical Society.
[60] Tianshu Li,et al. Ideal strength and phonon instability in single-layer MoS 2 , 2012 .
[61] Dong Qian,et al. Epitaxial growth of two-dimensional stanene. , 2015, Nature materials.
[62] J. I. Paredes,et al. Biomolecule-assisted exfoliation and dispersion of graphene and other two-dimensional materials: a review of recent progress and applications. , 2016, Nanoscale.
[63] X. Xia,et al. A green approach to the synthesis of graphene nanosheets. , 2009, ACS nano.
[64] Zhiyuan Zeng,et al. An effective method for the fabrication of few-layer-thick inorganic nanosheets. , 2012, Angewandte Chemie.
[65] Feng Li,et al. Doped graphene sheets as anode materials with superhigh rate and large capacity for lithium ion batteries. , 2011, ACS nano.
[66] Y. Maruyama,et al. Synthesis and some properties of black phosphorus single crystals , 1981 .
[67] Shoichi Endo,et al. Electrical Properties of Black Phosphorus Single Crystals , 1983 .
[68] Qun Wei,et al. Superior mechanical flexibility of phosphorene and few-layer black phosphorus , 2014, 1403.7882.
[69] S. Pantelides,et al. Large-area synthesis of monolayer and few-layer MoSe2 films on SiO2 substrates. , 2014, Nano letters.
[70] Tom Nilges,et al. Access and in situ growth of phosphorene-precursor black phosphorus , 2014 .
[71] A. Radenović,et al. Single-layer MoS2 transistors. , 2011, Nature nanotechnology.
[72] Harold S. Park,et al. Negative poisson’s ratio in single-layer black phosphorus , 2014, Nature Communications.
[73] Le Cai,et al. Ultrashort Channel Length Black Phosphorus Field-Effect Transistors. , 2015, ACS nano.
[74] T. Nilges,et al. A fast low-pressure transport route to large black phosphorus single crystals , 2008 .
[75] Zhenhua Ni,et al. Plasma-assisted fabrication of monolayer phosphorene and its Raman characterization , 2014, Nano Research.
[76] A. Ciesielski,et al. Graphene via sonication assisted liquid-phase exfoliation. , 2014, Chemical Society reviews.
[77] H. Krebs,et al. Über die Struktur und Eigenschaften der Halbmetalle. VIII. Die katalytische Darstellung des schwarzen Phosphors , 1955 .
[78] Xiaoming Xie,et al. Layer-by-layer thinning of graphene by plasma irradiation and post-annealing , 2012, Nanotechnology.
[79] Jun Dai,et al. Edge-Modified Phosphorene Nanoflake Heterojunctions as Highly Efficient Solar Cells. , 2016, Nano letters.
[80] Jani Kivioja,et al. Ultrafast graphene oxide humidity sensors. , 2013, ACS nano.
[81] M. J. Nine,et al. Synthesis of a graphene–tungsten composite with improved dispersibility of graphene in an ethanol solution and its use as a counter electrode for dye-sensitised solar cells , 2013 .
[82] Alan J. H. McGaughey,et al. Strongly anisotropic in-plane thermal transport in single-layer black phosphorene , 2015, Scientific Reports.
[83] Gang Zhang,et al. Strong Thermal Transport Anisotropy and Strain Modulation in Single-Layer Phosphorene , 2014 .
[84] Patrick Vogt,et al. Silicene: compelling experimental evidence for graphenelike two-dimensional silicon. , 2012, Physical review letters.
[85] C. Duque,et al. Twisted bilayer blue phosphorene: A direct band gap semiconductor , 2016, 1607.08831.
[86] Y. Kawazoe,et al. New Phosphorene Allotropes Containing Ridges with 2- and 4-Coordination , 2015 .
[87] Gang Zhang,et al. Coexistence of size-dependent and size-independent thermal conductivities in phosphorene , 2014, 1409.1967.
[88] M. E. Dávila,et al. Germanene: a novel two-dimensional germanium allotrope akin to graphene and silicene , 2014, 1406.2488.
[89] R. Jacobs. Phosphorus at High Temperatures and Pressures , 1937 .
[90] J. M. Sturm,et al. Well-Ordered Molybdenum Oxide Layers on Au(111): Preparation and Properties , 2013 .
[91] K. Sivula,et al. Self-assembled 2D WSe2 thin films for photoelectrochemical hydrogen production , 2015, Nature Communications.
[92] I. Shirotani. Growth of Large Single Crystals of Black Phosphorus at High Pressures and Temperatures, and its Electrical Properties , 1982 .
[93] Wenhui Hu,et al. WS2 nanosheets based on liquid exfoliation as effective electrocatalysts for hydrogen evolution reaction , 2015 .
[94] Mohammad Ziaur Rahman,et al. 2D phosphorene as a water splitting photocatalyst: fundamentals to applications , 2016 .
[95] Xianfan Xu,et al. Black phosphorus-monolayer MoS2 van der Waals heterojunction p-n diode. , 2014, ACS nano.
[96] M. Sitti,et al. Compliant and low-cost humidity nanosensors using nanoporous polymer membranes , 2006 .
[97] Gang Zhang,et al. Ultrafast and directional diffusion of lithium in phosphorene for high-performance lithium-ion battery. , 2015, Nano letters.
[98] Mohammad Asadi,et al. High‐Quality Black Phosphorus Atomic Layers by Liquid‐Phase Exfoliation , 2015, Advanced materials.
[99] Julio Gómez-Herrero,et al. 2D materials: to graphene and beyond. , 2011, Nanoscale.
[100] Harold S. Park,et al. Mechanical properties of single-layer black phosphorus , 2014, 1404.0232.
[101] M. El‐Kady,et al. Laser Scribing of High-Performance and Flexible Graphene-Based Electrochemical Capacitors , 2012, Science.
[102] Xiaolong Liu,et al. In Situ Thermal Decomposition of Exfoliated Two-Dimensional Black Phosphorus. , 2015, The journal of physical chemistry letters.
[103] Young-Chul Lee,et al. Stable semiconductor black phosphorus (BP)@titanium dioxide (TiO2) hybrid photocatalysts , 2015, Scientific Reports.
[104] A. Balandin. Thermal properties of graphene and nanostructured carbon materials. , 2011, Nature materials.
[105] J. Tour,et al. Laser-induced porous graphene films from commercial polymers , 2014, Nature Communications.
[106] Li Yang,et al. Strain-Engineering Anisotropic Electrical Conductance of Phosphorene , 2014 .
[107] Likai Li,et al. Black phosphorus field-effect transistors. , 2014, Nature nanotechnology.
[108] Tsutomu Miyasaka,et al. Tin-Based Amorphous Oxide: A High-Capacity Lithium-Ion-Storage Material , 1997 .
[109] J. Tarascon,et al. Nano-sized transition-metal oxides as negative-electrode materials for lithium-ion batteries , 2000, Nature.
[110] Li‐Min Liu,et al. Phosphorene ribbons as anode materials with superhigh rate and large capacity for Li-ion batteries , 2016 .
[111] O. Malyi,et al. Adsorption of metal adatoms on single-layer phosphorene. , 2015, Physical chemistry chemical physics : PCCP.
[112] T. Tang,et al. Direct observation of a widely tunable bandgap in bilayer graphene , 2009, Nature.
[113] G. Scuseria,et al. The indirect to direct band gap transition in multilayered MoS2 as predicted by screened hybrid density functional theory , 2011 .
[114] Kenji Watanabe,et al. Gate tunable quantum oscillations in air-stable and high mobility few-layer phosphorene heterostructures , 2014, 1412.0717.
[115] S. Banerjee,et al. Large-Area Synthesis of High-Quality and Uniform Graphene Films on Copper Foils , 2009, Science.
[116] Andres Castellanos-Gomez,et al. Environmental instability of few-layer black phosphorus , 2014, 1410.2608.
[117] Gyu-Tae Kim,et al. Few-layer black phosphorus field-effect transistors with reduced current fluctuation. , 2014, ACS nano.
[118] J. Shapter,et al. Phosphorene and Phosphorene‐Based Materials – Prospects for Future Applications , 2016, Advanced materials.
[119] Gengchiau Liang,et al. Thermoelectric performance of MX2 (M = Mo,W; X = S,Se) monolayers , 2013 .
[120] P. Ming,et al. Ab initio calculation of ideal strength and phonon instability of graphene under tension , 2007 .
[121] Jiaguo Yu,et al. Graphene-Based Photocatalysts for Hydrogen Generation. , 2013, The journal of physical chemistry letters.
[122] A. Castellanos-Gómez,et al. Black Phosphorus: Narrow Gap, Wide Applications. , 2015, The journal of physical chemistry letters.
[123] Suresh Valiyaveettil,et al. Flexible conductive graphene/poly(vinyl chloride) composite thin films with high mechanical strength and thermal stability , 2011 .
[124] F. Xia,et al. Rediscovering black phosphorus as an anisotropic layered material for optoelectronics and electronics. , 2014, Nature communications.
[125] Koichi Yamashita,et al. Black Phosphorus as a High-Capacity, High-Capability Negative Electrode for Sodium-Ion Batteries: Investigation of the Electrode/Electrolyte Interface , 2016 .
[126] Y. Sun,et al. Enhanced thermoelectric performance of phosphorene by strain-induced band convergence , 2014, 1406.5272.
[127] R. Soklaski,et al. Layer-controlled band gap and anisotropic excitons in few-layer black phosphorus , 2014 .
[128] F. Scotognella,et al. Black phosphorus-based one-dimensional photonic crystals and microcavities. , 2016, Applied optics.
[129] Razi Ahmad,et al. Application of 2D-MoO3 nano-flakes in organic light emitting diodes: effect of semiconductor to metal transition with irradiation , 2015 .
[130] Joshua B Smith,et al. Growth of 2D black phosphorus film from chemical vapor deposition , 2016, Nanotechnology.
[131] A. Javey,et al. High-performance single layered WSe₂ p-FETs with chemically doped contacts. , 2012, Nano letters.
[132] R. Keyes. The Electrical Properties of Black Phosphorus , 1953 .
[133] D. Naveh,et al. Tunable band gaps in bilayer transition-metal dichalcogenides , 2011 .
[134] Yingying Wu,et al. High-quality sandwiched black phosphorus heterostructure and its quantum oscillations , 2014, Nature Communications.
[135] G. Su,et al. Anisotropic intrinsic lattice thermal conductivity of phosphorene from first principles. , 2014, Physical chemistry chemical physics : PCCP.
[136] Thomas Frauenheim,et al. Phosphorene as a Superior Gas Sensor: Selective Adsorption and Distinct I-V Response. , 2014, The journal of physical chemistry letters.
[137] S. Rundqvist,et al. Refinement of the crystal structure of black phosphorus , 1965 .
[138] Qun Wei,et al. Strain-engineered direct-indirect band gap transition and its mechanism in two-dimensional phosphorene , 2014 .
[139] Zheng Wang,et al. Hydrothermal synthesis of macroscopic nitrogen-doped graphene hydrogels for ultrafast supercapacitor , 2013 .
[140] R. Mendelsohn,et al. Microwave- and nitronium ion-enabled rapid and direct production of highly conductive low-oxygen graphene. , 2012, Journal of the American Chemical Society.
[141] G. Steele,et al. Fast and broadband photoresponse of few-layer black phosphorus field-effect transistors. , 2014, Nano letters.
[142] Yong-Wei Zhang,et al. Lattice vibrational modes and phonon thermal conductivity of monolayer MoS2 , 2013, 1312.3729.
[143] Candace K. Chan,et al. High-performance lithium battery anodes using silicon nanowires. , 2008, Nature nanotechnology.
[144] E. Kan,et al. Theoretical Prediction of Phosphorene and Nanoribbons As Fast-Charging Li Ion Battery Anode Materials , 2015 .
[145] Y. D. Kim,et al. The role of external defects in chemical sensing of graphene field-effect transistors. , 2013, Nano letters.
[146] Hongwei Zhu,et al. Two-dimensional MoS2: Properties, preparation, and applications , 2015 .
[147] Qian Wang,et al. Toward Large Arrays of Multiplex Functionalized Carbon Nanotube Sensors for Highly Sensitive and Selective Molecular Detection. , 2003, Nano letters.
[148] Hiroyuki Kawai,et al. Experimental evidence for epitaxial silicene on diboride thin films. , 2012, Physical review letters.
[149] Effect of electric field on the band structure of graphene/boron nitride and boron nitride/boron nitride bilayers , 2011, 1108.1814.
[150] J. Cheon,et al. Chemical synthetic strategy for single-layer transition-metal chalcogenides. , 2014, Journal of the American Chemical Society.
[151] Thomas J. Misa. Computer science: Digital dawn , 2012, Nature.
[152] Juan Ignacio Paredes Nachón,et al. Biomolecule-assisted exfoliation and dispersion of graphene and other two-dimensional materials: a review of recent progress and applications , 2016 .
[153] Xianfan Xu,et al. Phosphorene: an unexplored 2D semiconductor with a high hole mobility. , 2014, ACS nano.
[154] Jun Hu,et al. Phosphorene: Synthesis, Scale-Up, and Quantitative Optical Spectroscopy. , 2015, ACS nano.
[155] Ryan Soklaski,et al. Enhanced thermoelectric efficiency via orthogonal electrical and thermal conductances in phosphorene. , 2014, Nano letters.
[156] Ruitao Lv,et al. Controlled synthesis and transfer of large-area WS2 sheets: from single layer to few layers. , 2013, ACS nano.
[157] Chongwu Zhou,et al. Detection of NO2 down to ppb levels using individual and multiple In2O3 nanowire devices , 2004 .
[158] W. Cai,et al. Visualizing Optical Phase Anisotropy in Black Phosphorus , 2016 .
[159] Xianfan Xu,et al. Phosphorene: an unexplored 2D semiconductor with a high hole mobility. , 2014, ACS nano.
[160] T. Inabe,et al. Synthesis and characterization of black phosphorus intercalation compounds , 1987 .
[161] Soo Min Hwang,et al. Generalized self-assembly of scalable two-dimensional transition metal oxide nanosheets , 2014, Nature Communications.