Crossref journal-article
Springer Science and Business Media LLC
Nature Materials (297)
Bibliography

Jiang, L., Shi, Z., Zeng, B., Wang, S., Kang, J.-H., Joshi, T., Jin, C., Ju, L., Kim, J., Lyu, T., Shen, Y.-R., Crommie, M., Gao, H.-J., & Wang, F. (2016). Soliton-dependent plasmon reflection at bilayer graphene domain walls. Nature Materials, 15(8), 840–844.

Authors 14
  1. Lili Jiang (first)
  2. Zhiwen Shi (additional)
  3. Bo Zeng (additional)
  4. Sheng Wang (additional)
  5. Ji-Hun Kang (additional)
  6. Trinity Joshi (additional)
  7. Chenhao Jin (additional)
  8. Long Ju (additional)
  9. Jonghwan Kim (additional)
  10. Tairu Lyu (additional)
  11. Yuen-Ron Shen (additional)
  12. Michael Crommie (additional)
  13. Hong-Jun Gao (additional)
  14. Feng Wang (additional)
References 32 Referenced 144
  1. Alden, J. S. et al. Strain solitons and topological defects in bilayer graphene. Proc. Natl Acad. Sci. USA 110, 11256–11260 (2013). (10.1073/pnas.1309394110) / Proc. Natl Acad. Sci. USA by JS Alden (2013)
  2. Butz, B. et al. Dislocations in bilayer graphene. Nature 505, 533–537 (2014). (10.1038/nature12780) / Nature by B Butz (2014)
  3. Yankowitz, M. et al. Electric field control of soliton motion and stacking in trilayer graphene. Nature Mater. 13, 786–789 (2014). (10.1038/nmat3965) / Nature Mater. by M Yankowitz (2014)
  4. Lin, J. H. et al. AC/AB stacking boundaries in bilayer graphene. Nano Lett. 13, 3262–3268 (2013). (10.1021/nl4013979) / Nano Lett. by JH Lin (2013)
  5. Yao, W., Yang, S. A. & Niu, Q. Edge states in graphene: from gapped flat-band to gapless chiral modes. Phys. Rev. Lett. 102, 096801 (2009). (10.1103/PhysRevLett.102.096801) / Phys. Rev. Lett. by W Yao (2009)
  6. Ju, L. et al. Topological valley transport at bilayer graphene domain walls. Nature 520, 650–655 (2015). (10.1038/nature14364) / Nature by L Ju (2015)
  7. Zhang, F., Jung, J., Fiete, G. A., Niu, Q. & MacDonald, A. H. Spontaneous quantum Hall states in chirally stacked few-layer graphene systems. Phys. Rev. Lett. 106, 156801 (2011). (10.1103/PhysRevLett.106.156801) / Phys. Rev. Lett. by F Zhang (2011)
  8. Martin, I., Blanter, Y. M. & Morpurgo, A. F. Topological confinement in bilayer graphene. Phys. Rev. Lett. 100, 036804 (2008). (10.1103/PhysRevLett.100.036804) / Phys. Rev. Lett. by I Martin (2008)
  9. Zhang, F., MacDonald, A. H. & Mele, E. J. Valley Chern numbers and boundary modes in gapped bilayer graphene. Proc. Natl Acad. Sci. USA 110, 10546–10551 (2013). (10.1073/pnas.1308853110) / Proc. Natl Acad. Sci. USA by F Zhang (2013)
  10. Vaezi, A., Liang, Y. F., Ngai, D. H., Yang, L. & Kim, E.-A. Topological edge states at a tilt boundary in gated multilayer graphene. Phys. Rev. X 3, 021018 (2013). / Phys. Rev. X by A Vaezi (2013)
  11. Semenoff, G. W., Semenoff, V. & Zhou, F. Domain walls in gapped graphene. Phys. Rev. Lett. 101, 087204 (2008). (10.1103/PhysRevLett.101.087204) / Phys. Rev. Lett. by GW Semenoff (2008)
  12. Hattendorf, S., Georgi, A., Liebmann, M. & Morgenstern, M. Networks of ABA and ABC stacked graphene on mica observed by scanning tunneling microscopy. Surf. Sci. 610, 53–58 (2013). (10.1016/j.susc.2013.01.005) / Surf. Sci. by S Hattendorf (2013)
  13. Lalmi, B. et al. Flower-shaped domains and wrinkles in trilayer epitaxial graphene on silicon carbide. Sci. Rep. 4, 4066 (2014). (10.1038/srep04066) / Sci. Rep. by B Lalmi (2014)
  14. Oostinga, J. B., Heersche, H. B., Liu, X. L., Morpurgo, A. F. & Vandersypen, L. M. K. Gate-induced insulating state in bilayer graphene devices. Nature Mater. 7, 151–157 (2008). (10.1038/nmat2082) / Nature Mater. by JB Oostinga (2008)
  15. Dean, C. R. et al. Hofstadter’s butterfly and the fractal quantum Hall effect in moire superlattices. Nature 497, 598–602 (2013). (10.1038/nature12186) / Nature by CR Dean (2013)
  16. Velasco, J. Jr et al. Transport spectroscopy of symmetry-broken insulating states in bilayer graphene. Nature Nanotech. 7, 156–160 (2012). (10.1038/nnano.2011.251) / Nature Nanotech. by J Velasco Jr (2012)
  17. Novoselov, K. S. et al. Unconventional quantum Hall effect and Berry’s phase of 2π in bilayer graphene. Nature Phys. 2, 177–180 (2006). (10.1038/nphys245) / Nature Phys. by KS Novoselov (2006)
  18. Zhang, Y. et al. Direct observation of a widely tunable bandgap in bilayer graphene. Nature 459, 820–823 (2009). (10.1038/nature08105) / Nature by Y Zhang (2009)
  19. Mak, K. F., Lui, C. H., Shan, J. & Heinz, T. F. Observation of an electric-field-induced band gap in bilayer graphene by infrared spectroscopy. Phys. Rev. Lett. 102, 256405 (2009). (10.1103/PhysRevLett.102.256405) / Phys. Rev. Lett. by KF Mak (2009)
  20. Yang, L., Deslippe, J., Park, C.-H., Cohen, M. L. & Louie, S. G. Excitonic effects on the optical response of graphene and bilayer graphene. Phys. Rev. Lett. 103, 186802 (2009). (10.1103/PhysRevLett.103.186802) / Phys. Rev. Lett. by L Yang (2009)
  21. Aoki, M. & Amawashi, H. Dependence of band structures on stacking and field in layered graphene. Solid State Commun. 142, 123–127 (2007). (10.1016/j.ssc.2007.02.013) / Solid State Commun. by M Aoki (2007)
  22. Keilmann, F. & Hillenbrand, R. Near-field microscopy by elastic light scattering from a tip. Phil. Trans. R. Soc. A 362, 787–805 (2004). (10.1098/rsta.2003.1347) / Phil. Trans. R. Soc. A by F Keilmann (2004)
  23. Novotny, L. & Hecht, B. Principles of Nano-Optics (Cambridge Univ. Press, 2006). (10.1017/CBO9780511813535) / Principles of Nano-Optics by L Novotny (2006)
  24. Bechtel, H. A. et al. Ultrabroadband infrared nanospectroscopic imaging. Proc. Natl Acad. Sci. USA 111, 7191–7196 (2014). (10.1073/pnas.1400502111) / Proc. Natl Acad. Sci. USA by HA Bechtel (2014)
  25. Gerber, J. A., Berweger, S., O’Callahan, B. T. & Raschke, M. B. Phase-resolved surface plasmon interferometry of graphene. Phys. Rev. Lett. 113, 055502 (2014). (10.1103/PhysRevLett.113.055502) / Phys. Rev. Lett. by JA Gerber (2014)
  26. Fei, Z. et al. Electronic and plasmonic phenomena at graphene grain boundaries. Nature Nanotech. 8, 821–825 (2013). (10.1038/nnano.2013.197) / Nature Nanotech. by Z Fei (2013)
  27. Hwang, E. H. & Das Sarma, S. Dielectric function, screening, and plasmons in two-dimensional graphene. Phys. Rev. B 75, 205418 (2007). (10.1103/PhysRevB.75.205418) / Phys. Rev. B by EH Hwang (2007)
  28. Fei, Z. et al. Gate-tuning of graphene plasmons revealed by infrared nano-imaging. Nature 487, 82–85 (2012). (10.1038/nature11253) / Nature by Z Fei (2012)
  29. Chen, J. et al. Optical nano-imaging of gate-tunable graphene plasmons. Nature 487, 77–81 (2012). (10.1038/nature11254) / Nature by J Chen (2012)
  30. Ju, L. et al. Graphene plasmonics for tunable terahertz metamaterials. Nature Nanotech. 6, 630–634 (2011). (10.1038/nnano.2011.146) / Nature Nanotech. by L Ju (2011)
  31. Yan, H. et al. Tunable infrared plasmonic devices using graphene/insulator stacks. Nature Nanotech. 7, 330–334 (2012). (10.1038/nnano.2012.59) / Nature Nanotech. by H Yan (2012)
  32. Novoselov, K. S. et al. Electric field effect in atomically thin carbon films. Science 306, 666–669 (2004). (10.1126/science.1102896) / Science by KS Novoselov (2004)
Dates
Type When
Created 9 years, 2 months ago (May 30, 2016, 1:56 p.m.)
Deposited 3 years, 1 month ago (July 6, 2022, 3:43 p.m.)
Indexed 1 week ago (Aug. 21, 2025, 2:24 p.m.)
Issued 9 years, 2 months ago (May 30, 2016)
Published 9 years, 2 months ago (May 30, 2016)
Published Online 9 years, 2 months ago (May 30, 2016)
Published Print 9 years ago (Aug. 1, 2016)
Funders 0

None

@article{Jiang_2016, title={Soliton-dependent plasmon reflection at bilayer graphene domain walls}, volume={15}, ISSN={1476-4660}, url={http://dx.doi.org/10.1038/nmat4653}, DOI={10.1038/nmat4653}, number={8}, journal={Nature Materials}, publisher={Springer Science and Business Media LLC}, author={Jiang, Lili and Shi, Zhiwen and Zeng, Bo and Wang, Sheng and Kang, Ji-Hun and Joshi, Trinity and Jin, Chenhao and Ju, Long and Kim, Jonghwan and Lyu, Tairu and Shen, Yuen-Ron and Crommie, Michael and Gao, Hong-Jun and Wang, Feng}, year={2016}, month=may, pages={840–844} }