Watching (De)Intercalation of 2D Metals in Epitaxial Graphene: Insight into the Role of Defects

被引:6
|
作者
Niefind, Falk [1 ,2 ]
Mao, Qian [3 ]
Nayir, Nadire [3 ,4 ]
Kowalik, Malgorzata [3 ]
Ahn, Jung-Joon [1 ,5 ]
Winchester, Andrew J. [1 ,6 ]
Dong, Chengye [7 ]
Maniyara, Rinu A. [7 ]
Robinson, Joshua A. [7 ]
van Duin, Adri C. T. [3 ]
Pookpanratana, Sujitra [1 ]
机构
[1] NIST, Nanoscale Device Characterizat Div, Gaithersburg, MD 20899 USA
[2] Univ Maryland, Dept Chem & Biochem, College Pk, MD 20742 USA
[3] Penn State Univ, Dept Mech Engn, University Pk, PA 16802 USA
[4] Karamanoglu Mehmetbey Univ, Dept Phys, TR-70000 Karaman, Turkiye
[5] Georgetown Univ, Dept Phys, Washington, DC 20057 USA
[6] Georgetown Univ, Inst Soft Matter, Washington, DC 20057 USA
[7] Penn State Univ, Dept Mat Sci & Engn, University Pk, PA 16802 USA
基金
美国国家科学基金会;
关键词
defects; dynamics; graphene; intercalation; molecular dynamics; photoemission electron microscopy; INTERCALATION; MECHANISM;
D O I
10.1002/smll.202306554
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Intercalation forms heterostructures, and over 25 elements and compounds are intercalated into graphene, but the mechanism for this process is not well understood. Here, the de-intercalation of 2D Ag and Ga metals sandwiched between bilayer graphene and SiC are followed using photoemission electron microscopy (PEEM) and atomistic-scale reactive molecular dynamics simulations. By PEEM, de-intercalation "windows" (or defects) are observed in both systems, but the processes follow distinctly different dynamics. Reversible de- and re-intercalation of Ag is observed through a circular defect where the intercalation velocity front is 0.5 nm s-1 +/- 0.2 nm s.-1 In contrast, the de-intercalation of Ga is irreversible with faster kinetics that are influenced by the non-circular shape of the defect. Molecular dynamics simulations support these pronounced differences and complexities between the two Ag and Ga systems. In the de-intercalating Ga model, Ga atoms first pile up between graphene layers until ultimately moving to the graphene surface. The simulations, supported by density functional theory, indicate that the Ga atoms exhibit larger binding strength to graphene, which agrees with the faster and irreversible diffusion kinetics observed. Thus, both the thermophysical properties of the metal intercalant and its interaction with defective graphene play a key role in intercalation. Ag (2D) and 2D Ga are initially intercalated into epitaxial graphene, and the de-intercalation processes are markedly different from each other as followed by photoemission electron microscopy. Molecular dynamic simulations and calculations provide insight into the role of the intercalant-they induce different interactions with (defective) graphene with implications to defect healing and kinetics of the (de)intercalation process.image
引用
收藏
页数:13
相关论文
共 50 条
  • [31] The Role of Graphene and Other 2D Materials in Solar Photovoltaics
    Das, Sonali
    Pandey, Deepak
    Thomas, Jayan
    Roy, Tania
    ADVANCED MATERIALS, 2019, 31 (01)
  • [32] Covalent intercalation of hydrazine derived graphene oxide as an efficient 2D material for supercapacitor application
    Ramesh, Pugalenthi
    Amalraj, Shankar
    Arunachalam, Prabhakarn
    Gopiraman, M.
    Al-Mayouf, Abdullah M.
    Vasanthkumar, S.
    SYNTHETIC METALS, 2021, 272
  • [33] Electrostatic gating and intercalation in 2D materials
    Wu, Yecun
    Li, Danfeng
    Wu, Chun-Lan
    Hwang, Harold Y.
    Cui, Yi
    NATURE REVIEWS MATERIALS, 2023, 8 (01) : 41 - 53
  • [34] Electrostatic gating and intercalation in 2D materials
    Yecun Wu
    Danfeng Li
    Chun-Lan Wu
    Harold Y. Hwang
    Yi Cui
    Nature Reviews Materials, 2023, 8 : 41 - 53
  • [35] A 2D barrier to defects
    Luigi Martiradonna
    Nature Materials, 2015, 14 (4) : 362 - 362
  • [36] 2D MATERIALS When defects are not defects
    Krasheninnikov, Arkady V.
    NATURE MATERIALS, 2018, 17 (09) : 757 - 758
  • [37] Hot carriers in epitaxial graphene sheets with and without hydrogen intercalation: role of substrate coupling
    Liu, Fan-Hung
    Lo, Shun-Tsung
    Chuang, Chiashain
    Woo, Tak-Pong
    Lee, Hsin-Yen
    Liu, Chieh-Wen
    Liu, Chieh-I
    Huang, Lung-I
    Liu, Cheng-Hua
    Yang, Yanfei
    Chang, Chih-Yuan S.
    Li, Lain-Jong
    Mende, Patrick C.
    Feenstra, Randall M.
    Elmquist, Randolph E.
    Liang, Chi-Te
    NANOSCALE, 2014, 6 (18) : 10562 - 10568
  • [38] Plasmon damping below the Landau regime: the role of defects in epitaxial graphene
    Langer, T.
    Baringhaus, J.
    Pfnuer, H.
    Schumacher, H. W.
    Tegenkamp, C.
    NEW JOURNAL OF PHYSICS, 2010, 12
  • [39] Epitaxial CVD Growth of High-Quality Graphene and Recent Development of 2D Heterostructures
    Ago, Hiroki
    Ogawa, Yui
    Kawahara, Kenji
    Ito, Yoshito
    Hu, Baoshan
    Orofeo, Carlo M.
    Fernandez, Pablo Solis
    Endo, Hiroko
    Hibino, Hiroki
    Mizuno, Seigi
    Tsukagoshi, Kazuhito
    Tsuji, Masaharu
    2015 IEEE INTERNATIONAL ELECTRON DEVICES MEETING (IEDM), 2015,
  • [40] Extraction and scattering analyses of 2D and bulk carriers in epitaxial graphene-on-SiC structure
    Lisesivdin, S. B.
    Atmaca, G.
    Arslan, E.
    Cakmakyapan, S.
    Kazar, O.
    Butun, S.
    Ul-Hassan, J.
    Janzen, E.
    Ozbay, E.
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2014, 63 : 87 - 92