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Li Q, Aklile EB, Tsui A, Hersam MC. Progress and future directions in borophene research. Nat Chem 2025; 17:642-652. [PMID: 40195433 DOI: 10.1038/s41557-025-01773-4] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/03/2024] [Accepted: 02/05/2025] [Indexed: 04/09/2025]
Abstract
Borophene-an atomically thin, two-dimensional (2D) boron analogue of graphene-has attracted significant attention as a 2D synthetic platform. Since its initial experimental realization, borophene has proven to be a versatile 2D material due to its high polymorphism and amenability to heterostructure integration. Nevertheless, several synthetic challenges have hindered the practical utilization of borophene, primarily due to its high chemical reactivity and interlayer charge transfer with growth substrates. Here we discuss emerging synthesis strategies for borophene, ranging from on-surface synthesis using elemental and molecular boron sources to substrate segregation growth techniques and solution-based reactions. We also focus on the surface and interface engineering of borophene with the aim of tailoring chemical reactivity and electronic properties. Finally, we highlight the remaining unresolved synthetic challenges for borophene and suggest future directions for accelerating fundamental science and applied technology for boron in the 2D limit.
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Affiliation(s)
- Qiucheng Li
- Department of Materials Science and Engineering, Northwestern University, Evanston, IL, USA
- School of Engineering, Westlake University, Hangzhou, China
| | - Eden B Aklile
- Department of Materials Science and Engineering, Northwestern University, Evanston, IL, USA
| | - Albert Tsui
- Department of Materials Science and Engineering, Northwestern University, Evanston, IL, USA
| | - Mark C Hersam
- Department of Materials Science and Engineering, Northwestern University, Evanston, IL, USA.
- Department of Chemistry, Northwestern University, Evanston, IL, USA.
- Department of Electrical and Computer Engineering, Northwestern University, Evanston, IL, USA.
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2
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Rajak S, Schultz JF, Li L, Jiang N. Atomistic Insights into Elemental Two-Dimensional Materials and Their Heterostructures. Annu Rev Phys Chem 2025; 76:83-102. [PMID: 39841928 DOI: 10.1146/annurev-physchem-082423-124941] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/24/2025]
Abstract
Inspired by the success of graphene, two-dimensional (2D) materials have been at the forefront of advanced (opto-)nanoelectronics and energy-related fields owing to their exotic properties like sizable bandgaps, Dirac fermions, quantum spin Hall states, topological edge states, and ballistic charge carrier transport, which hold promise for various electronic device applications. Emerging main group elemental 2D materials, beyond graphene, are of particular interest due to their unique structural characteristics, ease of synthetic exploration, and superior property tunability. In this review, we present recent advances in atomic-scale studies of elemental 2D materials with an emphasis on synthetic strategies and structural properties. We also discuss the challenges and perspectives regarding the integration of elemental 2D materials into various heterostructures.
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Affiliation(s)
- Soumyajit Rajak
- Department of Chemistry, University of Illinois Chicago, Chicago, Illinois, USA;
| | - Jeremy F Schultz
- Department of Chemistry, University of Illinois Chicago, Chicago, Illinois, USA;
| | - Linfei Li
- Department of Chemistry, University of Illinois Chicago, Chicago, Illinois, USA;
| | - Nan Jiang
- Department of Chemistry, University of Illinois Chicago, Chicago, Illinois, USA;
- Department of Physics, University of Illinois Chicago, Chicago, Illinois, USA
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3
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Huang Y, Yu H, Sun F, Ruan Q, Yakobson BI. Electron Transport in Borophene-Graphene Lateral Edge-Edge Junctions. ACS NANO 2025; 19:11675-11683. [PMID: 40101247 DOI: 10.1021/acsnano.4c09843] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 03/20/2025]
Abstract
Recently, a lateral heterojunction between borophene and graphene has been synthesized. This suggests borophene's potential application with graphene in nanoelectronics, and therefore, it is important to know the electron transport properties of their interface. We use density functional theory combined with the nonequilibrium Green's function method to calculate the transmission spectrum and the contact resistance of the junction at different doping levels. The electron transmission is determined by energy and momentum matching of borophene and graphene channels, as well as symmetry matching of wave functions. We find that the σ electrons in borophene are totally reflected at the interface, and π electrons have a transmission probability of up to 0.8. The high transmission probability leads to a low contact resistance of ∼115 Ω·μm at a doping p = 2 × 1012 cm2, better than state-of-the-art contacts from other metals such as Pd and Au, indicating borophene to be a good conductor in graphene-based devices.
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Affiliation(s)
- Yuefei Huang
- Department of Materials Science and NanoEngineering, Rice University, Houston, Texas 77005, United States
| | - Henry Yu
- Department of Materials Science and NanoEngineering, Rice University, Houston, Texas 77005, United States
| | - Favian Sun
- Department of Materials Science and NanoEngineering, Rice University, Houston, Texas 77005, United States
| | - Qiyuan Ruan
- Department of Materials Science and NanoEngineering, Rice University, Houston, Texas 77005, United States
| | - Boris I Yakobson
- Department of Materials Science and NanoEngineering, Rice University, Houston, Texas 77005, United States
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4
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Wang K, Choyal S, Schultz JF, McKenzie J, Li L, Liu X, Jiang N. Borophene: Synthesis, Chemistry, and Electronic Properties. Chempluschem 2024; 89:e202400333. [PMID: 39031807 DOI: 10.1002/cplu.202400333] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/11/2024] [Revised: 06/18/2024] [Accepted: 06/19/2024] [Indexed: 07/22/2024]
Abstract
As a neighbor of carbon in the periodic table, boron exhibits versatile structural and electronic configurations, with its allotropes predicted to possess intriguing structures and properties. Since the experimental realization of two-dimensional (2D) boron sheets (borophene) on Ag(111) substrates in 2015, the experimental study of the realization and characteristics of borophene has drawn increasing interest. In this review, we summarize the synthesis and properties of borophene, which are mainly based on experimental results. First, the synthesis of borophene on different substrates, as well as borophane and bilayer borophene, featuring unique phases and properties, are discussed. Next, the chemistry of borophene, such as oxidation, hydrogenation, and its integration into heterostructures with other materials, is summarized. We also mention a few works focused on the physical properties of borophene, specifically its electronic properties. Lastly, the brief outlook addresses challenges toward practical applications of borophene and possible solutions.
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Affiliation(s)
- Kai Wang
- Department of Chemistry, University of Illinois Chicago, Chicago, IL 60607, USA
| | - Shilpa Choyal
- Department of Chemistry, University of Illinois Chicago, Chicago, IL 60607, USA
| | - Jeremy F Schultz
- Nanoscale Device Characterization Division, National Institute of Standards and Technology, Gaithersburg, MD 20899, USA
| | - James McKenzie
- Department of Physics & Astronomy, University of Notre Dame, Notre Dame, IN 46556, USA
- Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, Notre Dame, IN 46556, USA
| | - Linfei Li
- Department of Chemistry, University of Illinois Chicago, Chicago, IL 60607, USA
| | - Xiaolong Liu
- Department of Physics & Astronomy, University of Notre Dame, Notre Dame, IN 46556, USA
- Stavropoulos Center for Complex Quantum Matter, University of Notre Dame, Notre Dame, IN 46556, USA
| | - Nan Jiang
- Department of Chemistry, University of Illinois Chicago, Chicago, IL 60607, USA
- Department of Physics, University of Illinois Chicago, Chicago, IL 60607, USA
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Mignon P, Allouche AR, Innis NR, Bousige C. Neural Network Approach for a Rapid Prediction of Metal-Supported Borophene Properties. J Am Chem Soc 2023; 145:27857-27866. [PMID: 38063165 DOI: 10.1021/jacs.3c11549] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/21/2023]
Abstract
We developed a high-dimensional neural network potential (NNP) to describe the structural and energetic properties of borophene deposited on silver. This NNP has the accuracy of density functional theory (DFT) calculations while achieving computational speedups of several orders of magnitude, allowing the study of extensive structures that may reveal intriguing moiré patterns or surface corrugations. We describe an efficient approach to constructing the training data set using an iterative technique known as the "adaptive learning approach". The developed NNP is able to produce, with excellent agreement, the structure, energy, and forces obtained at the DFT level. Finally, the calculated stability of various borophene polymorphs, including those not initially included in the training data set, shows better stabilization for ν ∼ 0.1 hole density, and in particular for the allotrope α ( ν = 1 / 9 ) . The stability of borophene on the metal surface is shown to depend on its orientation, implying structural corrugation patterns that can be observed only from long-time simulations on extended systems. The NNP also demonstrates its ability to simulate vibrational densities of states and produce realistic structures with simulated STM images closely matching the experimental ones.
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Affiliation(s)
- Pierre Mignon
- Institut Lumière Matière, UMR CNRS 5306, Univ Lyon, Université Claude Bernard Lyon 1, F-69622 Villeurbanne, France
| | - Abdul-Rahman Allouche
- Institut Lumière Matière, UMR CNRS 5306, Univ Lyon, Université Claude Bernard Lyon 1, F-69622 Villeurbanne, France
| | - Neil Richard Innis
- Laboratoire des Multimatériaux et Interfaces, UMR CNRS 5615, Univ. Lyon, Université Claude Bernard Lyon 1, F-69622 Villeurbanne, France
| | - Colin Bousige
- Laboratoire des Multimatériaux et Interfaces, UMR CNRS 5615, Univ. Lyon, Université Claude Bernard Lyon 1, F-69622 Villeurbanne, France
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Ivanovskaya V, Zobelli A, Basagni A, Casalini S, Colazzo L, de Boni F, de Oteyza DG, Sambi M, Sedona F. On-Surface Synthesis and Evolution of Self-Assembled Poly( p-phenylene) Chains on Ag(111): A Joint Experimental and Theoretical Study. THE JOURNAL OF PHYSICAL CHEMISTRY. C, NANOMATERIALS AND INTERFACES 2023; 127:393-402. [PMID: 36660099 PMCID: PMC9841565 DOI: 10.1021/acs.jpcc.2c06926] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Grants] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 09/29/2022] [Revised: 12/01/2022] [Indexed: 06/17/2023]
Abstract
The growth of controlled 1D carbon-based nanostructures on metal surfaces is a multistep process whose path, activation energies, and intermediate metastable states strongly depend on the employed substrate. Whereas this process has been extensively studied on gold, less work has been dedicated to silver surfaces, which have a rather different catalytic activity. In this work, we present an experimental and theoretical investigation of the growth of poly-p-phenylene (PPP) chains and subsequent narrow graphene ribbons starting from 4,4″-dibromo-p-terphenyl molecular precursors deposited at the silver surface. By combing scanning tunneling microscopy (STM) imaging and density functional theory (DFT) simulations, we describe the molecular morphology and organization at different steps of the growth process and we discuss the stability and conversion of the encountered species on the basis of calculated thermodynamic quantities. Unlike the case of gold, at the debromination step we observe the appearance of organometallic molecules and chains, which can be explained by their negative formation energy in the presence of a silver adatom reservoir. At the dehydrogenation temperature, the persistence of intercalated Br atoms hinders the formation of well-structured graphene ribbons, which are instead observed on gold, leading only to a partial lateral coupling of the PPP chains. We numerically derive very different activation energies for Br desorption from the Ag and Au surfaces, thereby confirming the importance of this process in defining the kinetics of the formation of molecular chains and graphene ribbons on different metal surfaces.
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Affiliation(s)
| | - Alberto Zobelli
- Université
Paris-Saclay, CNRS, Laboratoire de Physique
des Solides, 91405Orsay, France
| | - Andrea Basagni
- Dipartimento
di Scienze Chimiche, Università degli
Studi di Padova, 35131Padova, Italy
| | - Stefano Casalini
- Dipartimento
di Scienze Chimiche, Università degli
Studi di Padova, 35131Padova, Italy
| | - Luciano Colazzo
- Center
for Quantum Nanoscience, Institute for Basic
Science (IBS), Seoul03760, Republic
of Korea
- Ewha
Womans University, Seoul03760, Republic of Korea
| | - Francesco de Boni
- Dipartimento
di Scienze Chimiche, Università degli
Studi di Padova, 35131Padova, Italy
| | - Dimas G. de Oteyza
- Nanomaterials
and Nanotechnology Research Center (CINN), CSIC-UNIOVI-PA, 33940El Entrego, Spain
| | - Mauro Sambi
- Dipartimento
di Scienze Chimiche, Università degli
Studi di Padova, 35131Padova, Italy
| | - Francesco Sedona
- Dipartimento
di Scienze Chimiche, Università degli
Studi di Padova, 35131Padova, Italy
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Yang M, Jin H, Sun Z, Gui R. Monoelemental two-dimensional boron nanomaterials beyond theoretical simulations: From experimental preparation, functionalized modification to practical applications. Adv Colloid Interface Sci 2022; 304:102669. [PMID: 35429719 DOI: 10.1016/j.cis.2022.102669] [Citation(s) in RCA: 3] [Impact Index Per Article: 1.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 10/20/2021] [Revised: 03/08/2022] [Accepted: 04/06/2022] [Indexed: 11/01/2022]
Abstract
During the past decade, there is an explosive growth of theoretical and computational studies on 2D boron-based nanomaterials. In terms of extensive predictions from theoretical simulations, borophene, boron nanosheets and 2D boron derivatives show excellent structural, electronic, photonic and nonlinear optical characteristics, and potential applications in a wide range of fields. In recent years, previous studies have reported the successful experimental preparations, superior properties, multi-functionalized modifications of various 2D boron and its derivatives, which show many practical applications in significant fields. To further promote the ever-increasing experimental studies, this present review systematically summarizes recent progress on experimental preparation methods, functionalized modification strategies and practical applications of 2D boron-based nanomaterials and multifunctional derivatives. Firstly, this review summarizes the experimental preparation methods, including molecular beam epitaxy, chemical vapor deposition, liquid-phase exfoliation, chemical reaction, and other auxiliary methods. Then, various strategies for functionalized modification are introduced overall, focusing on borophene derivatives, boron-based nanosheets, atom-introduced, chemically-functionalized borophene and boron nanosheets, borophene or boron nanosheet-based heterostructures, and other functionalized 2D boron nanomaterials. Subsequently, various potential applications are discussed in detail, involving energy storage, catalysis conversion, photonics, optoelectronics, sensors, bio-imaging, biomedicine therapy, and adsorption. We comment the state-of-the-art related studies concisely, and also discuss the current status, probable challenges and perspectives rationally. This review is timely, comprehensive, in-depth and highly attractive for scientists from multiple disciplines and scientific fields, and can facilitate further development of advanced functional low-dimensional nanomaterials and multi-functionalized systems toward high-performance practical applications in significant fields.
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Liu X, Rahn MS, Ruan Q, Yakobson BI, Hersam MC. Probing borophene oxidation at the atomic scale. NANOTECHNOLOGY 2022; 33:235702. [PMID: 35180715 DOI: 10.1088/1361-6528/ac56bd] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 12/16/2021] [Accepted: 02/18/2022] [Indexed: 06/14/2023]
Abstract
Two-dimensional boron (i.e. borophene) holds promise for a variety of emerging nanoelectronic and quantum technologies. Since borophene is synthesized under ultrahigh vacuum (UHV) conditions, it is critical that the chemical stability and structural integrity of borophene in oxidizing environments are understood for practical borophene-based applications. In this work, we assess the mechanism of borophene oxidation upon controlled exposure to air and molecular oxygen in UHV via scanning tunneling microscopy andspectroscopy, x-ray photoelectron spectroscopy, and density functional theory calculations. While borophene catastrophically degrades almost instantaneously upon exposure to air, borophene undergoes considerably more controlled oxidation when exposed to molecular oxygen in UHV. In particular, UHV molecular oxygen dosing results in single-atom covalent modification of the borophene basal plane in addition to disordered borophene edge oxidation that shows altered electronic characteristics. By comparing these experimental observations with density functional theory calculations, further atomistic insight is gained including pathways for molecular oxygen dissociation, surface diffusion, and chemisorption to borophene. Overall, this study provides an atomic-scale perspective of borophene oxidation that will inform ongoing efforts to passivate and utilize borophene in ambient conditions.
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Affiliation(s)
- Xiaolong Liu
- Applied Physics Graduate Program, Northwestern University, Evanston, IL, 60208, United States of America
| | - Matthew S Rahn
- Department of Materials Science and Engineering, Northwestern University, Evanston, IL, 60208, United States of America
| | - Qiyuan Ruan
- Department of Materials Science and NanoEngineering, and Department of Chemistry, Rice University, Houston, TX, 77005, United States of America
| | - Boris I Yakobson
- Department of Materials Science and NanoEngineering, and Department of Chemistry, Rice University, Houston, TX, 77005, United States of America
| | - Mark C Hersam
- Applied Physics Graduate Program, Northwestern University, Evanston, IL, 60208, United States of America
- Department of Materials Science and Engineering, Northwestern University, Evanston, IL, 60208, United States of America
- Department of Chemistry, Northwestern University, Evanston, IL, 60208, United States of America
- Department of Electrical and Computer Engineering, Northwestern University, Evanston, IL, 60208, United States of America
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