Crossref journal-article
American Association for the Advancement of Science (AAAS)
Science Advances (221)
Abstract

A trilayer single-crystalline GDY film on graphene was prepared through a solution-phase van der Waals epitaxial strategy.

Bibliography

Gao, X., Zhu, Y., Yi, D., Zhou, J., Zhang, S., Yin, C., Ding, F., Zhang, S., Yi, X., Wang, J., Tong, L., Han, Y., Liu, Z., & Zhang, J. (2018). Ultrathin graphdiyne film on graphene through solution-phase van der Waals epitaxy. Science Advances, 4(7).

Authors 14
  1. Xin Gao (first)
  2. Yihan Zhu (additional)
  3. Ding Yi (additional)
  4. Jingyuan Zhou (additional)
  5. Shishu Zhang (additional)
  6. Chen Yin (additional)
  7. Feng Ding (additional)
  8. Shuqing Zhang (additional)
  9. Xiaohui Yi (additional)
  10. Jizheng Wang (additional)
  11. Lianming Tong (additional)
  12. Yu Han (additional)
  13. Zhongfan Liu (additional)
  14. Jin Zhang (additional)
References 40 Referenced 241
  1. 10.1038/318162a0
  2. 10.1038/354056a0
  3. 10.1126/science.1102896
  4. M. M. Haley, S. C. Brand, J. J. Pak, Carbon networks based on dehydrobenzoannulenes: Synthesis of graphdiyne substructures. Angew. Chem. Int. Ed. Engl. 36, 836–838 (1997). (10.1002/anie.199708361) / Angew. Chem. Int. Ed. Engl. / Carbon networks based on dehydrobenzoannulenes: Synthesis of graphdiyne substructures by Haley M. M. (1997)
  5. Y. Li, L. Xu, H. Liu, Y. Li, Graphdiyne and graphyne: From theoretical predictions to practical construction. Chem. Soc. Rev. 43, 2572–2586 (2014). (10.1039/c3cs60388a) / Chem. Soc. Rev. / Graphdiyne and graphyne: From theoretical predictions to practical construction by Li Y. (2014)
  6. K. Srinivasu, S. K. Ghosh, Graphyne and graphdiyne: Promising materials for nanoelectronics and energy storage applications. J. Phys. Chem. C 116, 5951–5956 (2012). (10.1021/jp212181h) / J. Phys. Chem. C / Graphyne and graphdiyne: Promising materials for nanoelectronics and energy storage applications by Srinivasu K. (2012)
  7. N. Narita, S. Nagai, S. Suzuki, K. Nakao, Optimized geometries and electronic structures of graphyne and its family. Phys. Rev. B 58, 11009–11014 (1998). (10.1103/PhysRevB.58.11009) / Phys. Rev. B / Optimized geometries and electronic structures of graphyne and its family by Narita N. (1998)
  8. A. N. Enyashin, A. L. Ivanovskii, Graphene allotropes. Phys. Status Solidi B Basic Solid State Phys. 248, 1879–1883 (2011). (10.1002/pssb.201046583) / Phys. Status Solidi B Basic Solid State Phys. / Graphene allotropes by Enyashin A. N. (2011)
  9. G. Luo, X. Qian, H. Liu, R. Qin, J. Zhou, L. Li, Z. Gao, E. Wang, W.-N. Mei, J. Lu, Y. Li, S. Nagase, Quasiparticle energies and excitonic effects of the two-dimensional carbon allotrope graphdiyne: Theory and experiment. Phys. Rev. B 84, 075439 (2011). (10.1103/PhysRevB.84.075439) / Phys. Rev. B / Quasiparticle energies and excitonic effects of the two-dimensional carbon allotrope graphdiyne: Theory and experiment by Luo G. (2011)
  10. M. Long, L. Tang, D. Wang, Y. Li, Z. Shuai, Electronic structure and carrier mobility in graphdiyne sheet and nanoribbons: Theoretical predictions. ACS Nano 5, 2593–2600 (2011). (10.1021/nn102472s) / ACS Nano / Electronic structure and carrier mobility in graphdiyne sheet and nanoribbons: Theoretical predictions by Long M. (2011)
  11. Q. Zheng, G. Luo, Q. Liu, R. Quhe, J. Zheng, K. Tang, Z. Gao, S. Nagase, J. Lu, Structural and electronic properties of bilayer and trilayer graphdiyne. Nanoscale 4, 3990–3996 (2012). (10.1039/c2nr12026g) / Nanoscale / Structural and electronic properties of bilayer and trilayer graphdiyne by Zheng Q. (2012)
  12. Y. Jiao, A. Du, M. Hankel, Z. Zhu, V. Rudolph, S. C. Smith, Graphdiyne: A versatile nanomaterial for electronics and hydrogen purification. Chem. Commun. 47, 11843–11845 (2011). (10.1039/c1cc15129k) / Chem. Commun. / Graphdiyne: A versatile nanomaterial for electronics and hydrogen purification by Jiao Y. (2011)
  13. J. He, S. Y. Ma, P. Zhou, C. X. Zhang, C. He, L. Z. Sun, Magnetic properties of single transition-metal atom absorbed graphdiyne and graphyne sheet from DFT + U calculations. J. Phys. Chem. C 116, 26313–26321 (2012). (10.1021/jp307408u) / J. Phys. Chem. C / Magnetic properties of single transition-metal atom absorbed graphdiyne and graphyne sheet from DFT + U calculations by He J. (2012)
  14. J. Li, X. Gao, B. Liu, Q. Feng, X.-B. Li, M.-Y. Huang, Z. Liu, J. Zhang, C.-H. Tung, L.-Z. Wu, Graphdiyne: A metal-free material as hole transfer layer to fabricate quantum dot-sensitized photocathodes for hydrogen production. J. Am. Chem. Soc. 138, 3954–3957 (2016). (10.1021/jacs.5b12758) / J. Am. Chem. Soc. / Graphdiyne: A metal-free material as hole transfer layer to fabricate quantum dot-sensitized photocathodes for hydrogen production by Li J. (2016)
  15. H. Shang, Z. Zuo, L. Li, F. Wang, H. Liu, Y. Li, Y. Li, Ultrathin graphdiyne nanosheets grown in situ on copper nanowires and their performance as lithium-ion battery anodes. Angew. Chem. Int. Ed. Engl. 57, 774–778 (2018). (10.1002/anie.201711366) / Angew. Chem. Int. Ed. Engl. / Ultrathin graphdiyne nanosheets grown in situ on copper nanowires and their performance as lithium-ion battery anodes by Shang H. (2018)
  16. Z. Huang, Z. Yu, Y. Li, J. Wang, ZnO ultraviolet photodetector modified with graphdiyne. Acta Phys. Chim. Sin. 34, 1088–1094 (2018). (10.3866/PKU.WHXB201801251) / Acta Phys. Chim. Sin. / ZnO ultraviolet photodetector modified with graphdiyne by Huang Z. (2018)
  17. H.-Y. Gao, P. A. Held, S. Amirjalayer, L. Liu, A. Timmer, B. Schirmer, O. D. Arado, H. Mönig, C. Mück-Lichtenfeld, J. Neugebauer, A. Studer, H. Fuchs, Intermolecular on-surface σ-bond metathesis. J. Am. Chem. Soc. 139, 7012–7019 (2017). (10.1021/jacs.7b02430) / J. Am. Chem. Soc. / Intermolecular on-surface σ-bond metathesis by Gao H.-Y. (2017)
  18. Q. Sun, L. Cai, H. Ma, C. Yuan, W. Xu, Dehalogenative homocoupling of terminal alkynyl bromides on Au (111): Incorporation of acetylenic scaffolding into surface nanostructures. ACS Nano 10, 7023–7030 (2016). (10.1021/acsnano.6b03048) / ACS Nano / Dehalogenative homocoupling of terminal alkynyl bromides on Au (111): Incorporation of acetylenic scaffolding into surface nanostructures by Sun Q. (2016)
  19. 10.1039/b922733d
  20. 10.1021/jacs.5b04057
  21. G. Li, Y. Li, X. Qian, H. Liu, H. Lin, N. Chen, Y. Li, Construction of tubular molecule aggregations of graphdiyne for highly efficient field emission. J. Phys. Chem. C 115, 2611–2615 (2011). (10.1021/jp107996f) / J. Phys. Chem. C / Construction of tubular molecule aggregations of graphdiyne for highly efficient field emission by Li G. (2011)
  22. X. Gao, J. Li, R. Du, J. Zhou, M.-Y. Huang, R. Liu, J. Li, Z. Xie, L.-Z. Wu, Z. Liu, J. Zhang, Direct synthesis of graphdiyne nanowalls on arbitrary substrates and its application for photoelectrochemical water splitting cell. Adv. Mater. 29, 1605308 (2017). (10.1002/adma.201605308) / Adv. Mater. / Direct synthesis of graphdiyne nanowalls on arbitrary substrates and its application for photoelectrochemical water splitting cell by Gao X. (2017)
  23. R. Matsuoka, R. Sakamoto, K. Hoshiko, S. Sasaki, H. Masunaga, K. Nagashio, H. Nishihara, Crystalline graphdiyne nanosheets produced at a gas/liquid or liquid/liquid interface. J. Am. Chem. Soc. 139, 3145–3152 (2017). (10.1021/jacs.6b12776) / J. Am. Chem. Soc. / Crystalline graphdiyne nanosheets produced at a gas/liquid or liquid/liquid interface by Matsuoka R. (2017)
  24. J. Zhou, Z. Xie, R. Liu, X. Gao, J. Li, Y. Xiong, L. Tong, J. Zhang, Z. Liu, Synthesis of ultrathin graphdiyne film using a surface template. ACS Appl. Mater. Interfaces (2018). / ACS Appl. Mater. Interfaces / Synthesis of ultrathin graphdiyne film using a surface template by Zhou J. (2018)
  25. Y. Nie, C. Liang, P.-R. Cha, L. Colombo, R. M. Wallace, K. Cho, A kinetic Monte Carlo simulation method of van der Waals epitaxy for atomistic nucleation-growth processes of transition metal dichalcogenides. Sci. Rep. 7, 2977 (2017). (10.1038/s41598-017-02919-2) / Sci. Rep. / A kinetic Monte Carlo simulation method of van der Waals epitaxy for atomistic nucleation-growth processes of transition metal dichalcogenides by Nie Y. (2017)
  26. 10.1126/science.1202747
  27. C. Li, X. Lu, Y. Han, S. Tang, Y. Ding, R. Liu, H. Bao, Y. Li, J. Luo, T. Lu, Direct imaging and determination of the crystal structure of six-layered graphdiyne. Nano Res. 11, 1714–1721 (2018). (10.1007/s12274-017-1789-7) / Nano Res. / Direct imaging and determination of the crystal structure of six-layered graphdiyne by Li C. (2018)
  28. 10.1038/nmat4852
  29. S. Zhang, J. Wang, Z. Li, R. Zhao, L. Tong, Z. Liu, J. Zhang, Z. Liu, Raman spectra and corresponding strain effects in graphyne and graphdiyne. J. Phys. Chem. C 120, 10605–10613 (2016). (10.1021/acs.jpcc.5b12388) / J. Phys. Chem. C / Raman spectra and corresponding strain effects in graphyne and graphdiyne by Zhang S. (2016)
  30. S. Huang, X. Ling, L. Liang, Y. Song, W. Fang, J. Zhang, J. Kong, V. Meunier, M. S. Dresselhaus, Molecular selectivity of graphene-enhanced Raman scattering. Nano Lett. 15, 2892–2901 (2015). (10.1021/nl5045988) / Nano Lett. / Molecular selectivity of graphene-enhanced Raman scattering by Huang S. (2015)
  31. 10.1038/ncomms9429
  32. X. Qian, Z. Ning, Y. Li, H. Liu, C. Ouyang, Q. Chen, Y. Li, Construction of graphdiyne nanowires with high-conductivity and mobility. Dalton Trans. 41, 730–733 (2012). (10.1039/C1DT11641J) / Dalton Trans. / Construction of graphdiyne nanowires with high-conductivity and mobility by Qian X. (2012)
  33. C. Koch “Determination of core structure periodicity and point defect density along dislocations ” thesis Arizona State University (2002).
  34. L. Lin, J. Li, H. Ren, A. L. Koh, N. Kang, H. Peng, H. Q. Xu, Z. Liu, Surface engineering of copper foils for growing centimeter-sized single-crystalline graphene. ACS Nano 10, 2922–2929 (2016). (10.1021/acsnano.6b00041) / ACS Nano / Surface engineering of copper foils for growing centimeter-sized single-crystalline graphene by Lin L. (2016)
  35. 10.1016/0927-0256(96)00008-0
  36. 10.1103/PhysRevB.50.17953
  37. 10.1103/PhysRevLett.102.073005
  38. 10.1063/1.1329672
  39. J. Zhong, J. Wang, J.-G. Zhou, B.-H. Mao, C.-H. Liu, H.-B. Liu, Y.-L. Li, T.-K. Sham, X.-H. Sun, S.-D. Wang, Electronic structure of graphdiyne probed by x-ray absorption spectroscopy and scanning transmission x-ray microscopy. J. Phys. Chem. C 117, 5931–5936 (2013). (10.1021/jp310013z) / J. Phys. Chem. C / Electronic structure of graphdiyne probed by x-ray absorption spectroscopy and scanning transmission x-ray microscopy by Zhong J. (2013)
  40. J. Jover, Copper-catalyzed Eglinton oxidative homocoupling of terminal alkynes: A computational study. J. Chem. 2015, 430358 (2015). (10.1155/2015/430358) / J. Chem. / Copper-catalyzed Eglinton oxidative homocoupling of terminal alkynes: A computational study by Jover J. (2015)
Dates
Type When
Created 7 years, 1 month ago (July 6, 2018, 2:15 p.m.)
Deposited 1 year, 7 months ago (Jan. 9, 2024, 1:49 p.m.)
Indexed 1 day, 2 hours ago (Aug. 31, 2025, 6:29 a.m.)
Issued 7 years, 1 month ago (July 6, 2018)
Published 7 years, 1 month ago (July 6, 2018)
Published Print 7 years, 1 month ago (July 6, 2018)
Funders 7
  1. Ministry of Science and Technology 10.13039/100007225

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    1. Ministry of Science and Technology of the Socialist Republic of Vietnam
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    3. MOST
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  2. Ministry of Science and Technology 10.13039/100007225

    Region: Asia

    gov (National government)

    Labels3
    1. Ministry of Science and Technology of the Socialist Republic of Vietnam
    2. Vietnamese Ministry of Science and Technology
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  3. National Natural Science Foundation of China 10.13039/501100001809

    Region: Asia

    gov (National government)

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    1. Chinese National Science Foundation
    2. Natural Science Foundation of China
    3. National Science Foundation of China
    4. NNSF of China
    5. NSF of China
    6. 国家自然科学基金委员会
    7. National Nature Science Foundation of China
    8. Guójiā Zìrán Kēxué Jījīn Wěiyuánhuì
    9. NSFC
    10. NNSF
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    1. 51432002
  4. National Natural Science Foundation of China 10.13039/501100001809

    Region: Asia

    gov (National government)

    Labels11
    1. Chinese National Science Foundation
    2. Natural Science Foundation of China
    3. National Science Foundation of China
    4. NNSF of China
    5. NSF of China
    6. 国家自然科学基金委员会
    7. National Nature Science Foundation of China
    8. Guójiā Zìrán Kēxué Jījīn Wěiyuánhuì
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  5. National Natural Science Foundation of China 10.13039/501100001809

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    2. Natural Science Foundation of China
    3. National Science Foundation of China
    4. NNSF of China
    5. NSF of China
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    7. National Nature Science Foundation of China
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    1. Chinese National Science Foundation
    2. Natural Science Foundation of China
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    4. NNSF of China
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    7. National Nature Science Foundation of China
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@article{Gao_2018, title={Ultrathin graphdiyne film on graphene through solution-phase van der Waals epitaxy}, volume={4}, ISSN={2375-2548}, url={http://dx.doi.org/10.1126/sciadv.aat6378}, DOI={10.1126/sciadv.aat6378}, number={7}, journal={Science Advances}, publisher={American Association for the Advancement of Science (AAAS)}, author={Gao, Xin and Zhu, Yihan and Yi, Ding and Zhou, Jingyuan and Zhang, Shishu and Yin, Chen and Ding, Feng and Zhang, Shuqing and Yi, Xiaohui and Wang, Jizheng and Tong, Lianming and Han, Yu and Liu, Zhongfan and Zhang, Jin}, year={2018}, month=jul }