Please wait a minute...
Frontiers of Physics

ISSN 2095-0462

ISSN 2095-0470(Online)

CN 11-5994/O4

Postal Subscription Code 80-965

2018 Impact Factor: 2.483

Front Phys Chin    2010, Vol. 5 Issue (4) : 387-392    https://doi.org/10.1007/s11467-010-0137-0
RESEARCH ARTICLE
Corrugated single layer templates for molecules: From h-BN nanomesh to graphene based quantum dot arrays
Hai-feng MA (马海峰), Mario THOMANN, Jeanette SCHMIDLIN, Silvan ROTH, Martin MORSCHER, Thomas GREBER()
Physik-Institut, Universit?t Zürich, Winterthurerstrasse 190, CH-8057 Zürich, Switzerland
 Download: PDF(249 KB)   HTML
 Export: BibTeX | EndNote | Reference Manager | ProCite | RefWorks
Abstract

Functional nano-templates enable self-assembly of otherwise impossible arrangements of molecules. A particular class of such templates is that of sp2 hybridized single layers of hexagonal boron nitride or carbon (graphene) on metal supports. If the substrate and the single layer have a lattice mismatch, superstructures are formed. On substrates like rhodium or ruthenium these superstructures have unit cells with ~3-nm lattice constant. They are corrugated and contain sub-units, which behave like traps for molecules or quantum dots, which are small enough to become operational at room temperature. For graphene on Rh(111) we emphasize a new structural element of small extra hills within the corrugation landscape. For the case of molecules like water it is shown that new phases assemble on such templates, and that they can be used as “nano-laboratories” where many individual processes are studied in parallel. Furthermore, it is shown that the h-BN/Rh(111) nanomesh displays a strong scanning tunneling microscopy-induced luminescence contrast within the 3 nm unit cell which is a way to address trapped molecules and/or quantum dots.

Keywords hexagonal boron nitride      graphene      nano-template      quantum dot      nano-ice      nanomesh      electroluminescence     
Corresponding Author(s): GREBER Thomas,Email:greber@physik.uzh.ch   
Issue Date: 05 December 2010
 Cite this article:   
Hai-feng MA (马海峰),Mario THOMANN,Jeanette SCHMIDLIN, et al. Corrugated single layer templates for molecules: From h-BN nanomesh to graphene based quantum dot arrays[J]. Front Phys Chin, 2010, 5(4): 387-392.
 URL:  
https://academic.hep.com.cn/fop/EN/10.1007/s11467-010-0137-0
https://academic.hep.com.cn/fop/EN/Y2010/V5/I4/387
1 A. K. Geim and K. S. Novoselov, Nature Mater. , 2007, 6: 183
doi: 10.1038/nmat1849
2 C. Oshima and A. Nagashima, J. Phys.: Condens. Matter , 1997, 9: 1
doi: 10.1088/0953-8984/9/1/004
3 T. Greber, Handbook of Nanophysics: Functional Nanomaterials, London: Taylor & Francis Books, 2010
4 H. Dil, J. Lobo-Checa, R. Laskowski, P. Blaha, S. Berner, J. Osterwalder, and T. Greber, Science , 2008, 319: 1824
doi: 10.1126/science.1154179
5 T. Brugger, S. Günther, B. Wang, J. H. Dil, M. L. Bocquet, J. Osterwalder, J. Wintterlin, and T. Greber, Phys. Rev. B , 2009, 79: 045407
doi: 10.1103/PhysRevB.79.045407
6 T. Greber, e-J. Surf. Sci. Nanotech. , 2010, 8: 62
doi: 10.1380/ejssnt.2010.62
7 M. Morscher, M. Corso, T. Greber, and J. Osterwalder, Sur. Sci. , 2006, 600: 3280
doi: 10.1016/j.susc.2006.06.016
8 T. Greber, M. Corso, and J. Osterwalder, Sur. Sci. , 2009, 603: 1373
doi: 10.1016/j.susc.2008.08.043
9 A. T. N’Diaye, S. Bleikamp, P. J. Feibelman, and T. Michely, Phys. Rev. Lett. , 2006, 97: 215501
doi: 10.1103/PhysRevLett.97.215501
10 M. Corso, W. Auw?rter, M. Muntwiler, A. Tamai, T. Greber, and J. Osterwalder, Science , 2004, 303: 217
doi: 10.1126/science.1091979
11 S. Berner, M. Corso, R. Widmer, O. Groening, R. Laskowski, P. Blaha, K. Schwarz, A. Goriachko, H. Over, S. Gsell, , Angew. Chem. Int. Ed. , 2007, 46: 5115
doi: 10.1002/anie.200700234
12 H. G. Zhang, H. Hu, Y. Pan, J. H. Mao, M. Gao, H. M. Guo, S. X. Du, T. Greber, and H. J. Gao, J. Phys.: Condens. Matter , 2010, 22: 302001
doi: 10.1088/0953-8984/22/30/302001
13 A. B. Preobrajenski, M. L. Ng, A. S. Vinogradov, and N. M?rtensson, Phys. Rev. B , 2008, 78: 073401
doi: 10.1103/PhysRevB.78.073401
14 W. Auw?rter, T. J. Kreutz, T. Greber, and J. Osterwalder, Sur. Sci. , 1999, 429: 229
doi: 10.1016/S0039-6028(99)00381-7
15 G. B. Grad, P. Blaha, K. Schwarz, W. Aüwarter, and T. Greber, Phys. Rev. B , 2003, 68: 085404
doi: 10.1103/PhysRevB.68.085404
16 I. Horcas, R. Fernández, J. M. Gómez-Rodríguez, J. Colchero, J. Gómez-Herrero, and A. M. Baro, Rev. Sci. Instrum. , 2007, 78: 013705
17 F. Müller, H. Sachdev, S. Hüfner, A. J. Pollard, E. W. Perkins, J. C. Russell, P. H. Beton, S. Gsell, M. Fischer, M. Schreck, , Small , 2009, 5: 2291
doi: 10.1002/smll.200900158
18 M. Iannuzzi, Private Communication
19 H. F. Ma, T. Brugger, S. Berner, Y. Ding, M. Iannuzzi, J. Hutter, J. Osterwalder, and T. Greber, ChemPhysChem , 2010, 11: 399
doi: 10.1002/cphc.200900857
20 A. J. Pollard, E. W. Perkins, N. A. Smith, A. Saywell, G. Goretzki, A. G. Phillips, S. P. Argent, H. Sachdev, F. Müller, S. Hüfner, , Angew. Chem. Int. Edit. , 2010, 49: 1794
doi: 10.1002/anie.200905503
21 J. H. Mao, H. G. Zhang, Y. H. Jiang, Y. Pan, M. Gao, W. D. Xiao, and H. J. Gao, J. Am. Chem. Soc. , 2009, 131: 14136
doi: 10.1021/ja904907z
22 J. Zhang, V. Sessi, C. H. Michaelis, I. Brihuega, J. Honolka, K. Kern, R. Skomski, X. Chen, G. Rojas, and A. Enders, Phys. Rev. B , 2008, 78: 165430
doi: 10.1103/PhysRevB.78.165430
23 Y. Pan, M. Gao, L. Huang, F. Liu, and H. J. Gao, Appl. Phys. Lett. , 2009, 95: 093106
doi: 10.1063/1.3223781
24 A. Goriachko, Y. B. He, M. Knapp, H. Over, M. Corso, T. Brugger, S. Berner, J. Osterwalder, and T. Greber, Langmuir , 2007, 23: 2928
doi: 10.1021/la062990t
25 R. Laskowski, P. Blaha, T. Gallauner, and K. Schwarz, Phys. Rev. Lett. , 2007, 98: 106802
doi: 10.1103/PhysRevLett.98.106802
26 J. K. Gimzewski, B. Reihl, J. H. Coombs, and R. R. Schlittler, Z. Phys. B: Condens. Matter , 1988, 72: 497
doi: 10.1007/BF01314531
27 S. W. Wu, N. Ogawa, and W. Ho, Science , 2006, 312: 1362
doi: 10.1126/science.1124881
[1] Xiao-Ming Huang, Li-Zhao Liu, Si Zhou, Ji-Jun Zhao. Physical properties and device applications of graphene oxide[J]. Front. Phys. , 2020, 15(3): 33301-.
[2] Zhi-Yue Zheng, Rui Xu, Kun-Qi Xu, Shi-Li Ye, Fei Pang, Le Lei, Sabir Hussain, Xin-Meng Liu, Wei Ji, Zhi-Hai Cheng. Real-space visualization of intercalated water phases at the hydrophobic graphene interface with atomic force microscopy[J]. Front. Phys. , 2020, 15(2): 23601-.
[3] Guo-Feng Zhang, Yong-Gang Peng, Hai-Qing Xie, Bin Li, Zhi-Jie Li, Chang-Gang Yang, Wen-Li Guo, Cheng-Bing Qin, Rui-Yun Chen, Yan Gao, Yu-Jun Zheng, Lian-Tuan Xiao, Suo-Tang Jia. Linear dipole behavior of single quantum dots encased in metal oxide semiconductor nanoparticles films[J]. Front. Phys. , 2019, 14(2): 23605-.
[4] Ke Wang, Tao Hou, Yafei Ren, Zhenhua Qiao. Enhanced robustness of zero-line modes in graphene via magnetic field[J]. Front. Phys. , 2019, 14(2): 23501-.
[5] Rong Wang, Xin-Gang Ren, Ze Yan, Li-Jun Jiang, Wei E. I. Sha, Guang-Cun Shan. Graphene based functional devices: A short review[J]. Front. Phys. , 2019, 14(1): 13603-.
[6] Tataiana Latychevskaia, Seok-Kyun Son, Yaping Yang, Dale Chancellor, Michael Brown, Servet Ozdemir, Ivan Madan, Gabriele Berruto, Fabrizio Carbone, Artem Mishchenko, Kostya S. Novoselov. Stacking transition in rhombohedral graphite[J]. Front. Phys. , 2019, 14(1): 13608-.
[7] T. Latychevskaia, C. R. Woods, Yi Bo Wang, M. Holwill, E. Prestat, S. J. Haigh, K. S. Novoselov. Convergent and divergent beam electron holography and reconstruction of adsorbates on free-standing two-dimensional crystals[J]. Front. Phys. , 2019, 14(1): 13606-.
[8] Xinzhou Deng, Hualing Yang, Shifei Qi, Xiaohong Xu, Zhenhua Qiao. Quantum anomalous Hall effect and giant Rashba spin-orbit splitting in graphene system co-doped with boron and 5d transition-metal atoms[J]. Front. Phys. , 2018, 13(5): 137308-.
[9] Mingjun Hu, Naibo Zhang, Guangcun Shan, Jiefeng Gao, Jinzhang Liu, Robert K. Y. Li. Two-dimensional materials: Emerging toolkit for construction of ultrathin high-efficiency microwave shield and absorber[J]. Front. Phys. , 2018, 13(4): 138113-.
[10] Ben-Hu Zhou, Ben-Liang Zhou, Yang-Su Zeng, Man-Yi Duan, Guang-Hui Zhou. Spin-dependent transport properties and Seebeck effects for a crossed graphene superlattice p-n junction with armchair edge[J]. Front. Phys. , 2018, 13(4): 137304-.
[11] Ze-Zhou He, Yin-Bo Zhu, Heng-An Wu. Self-folding mechanics of graphene tearing and peeling from a substrate[J]. Front. Phys. , 2018, 13(3): 138111-.
[12] Zhinan Ma (马志楠), Jibin Zhuang (庄吉彬), Xu Zhang (张旭), Zhen Zhou (周震). SiP monolayers: New 2D structures of group IV-V compounds for visible-light photohydrolytic catalysts[J]. Front. Phys. , 2018, 13(3): 138104-.
[13] Hai-Ming Dong, Yi-Feng Duan, Fei Huang, Jin-Long Liu. Electron drift velocity and mobility in graphene[J]. Front. Phys. , 2018, 13(2): 137203-.
[14] Tong Liu (刘彤), Hong Zhang (张红), Xin-Lu Cheng (程新路), Yang Xu (徐阳). Coherent resonance of quantum plasmons in Stone–Wales defected graphene–silver nanowire hybrid system[J]. Front. Phys. , 2017, 12(5): 125201-.
[15] Qi-Bo Zeng,Shu Chen,L. You,Rong Lü. Transport through a quantum dot coupled to two Majorana bound states[J]. Front. Phys. , 2017, 12(4): 127302-.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed