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He, J., Kumar, N., Bellus, M. Z., Chiu, H.-Y., He, D., Wang, Y., & Zhao, H. (2014). Electron transfer and coupling in graphene–tungsten disulfide van der Waals heterostructures. Nature Communications, 5(1).

Authors 7
  1. Jiaqi He (first)
  2. Nardeep Kumar (additional)
  3. Matthew Z. Bellus (additional)
  4. Hsin-Ying Chiu (additional)
  5. Dawei He (additional)
  6. Yongsheng Wang (additional)
  7. Hui Zhao (additional)
References 33 Referenced 232
  1. von Klitzing, K. The quantized Hall effect. Rev. Mod. Phys. 58, 519–531 (1986). (10.1103/RevModPhys.58.519) / Rev. Mod. Phys. by K von Klitzing (1986)
  2. Tsui, D. C., Stormer, H. L. & Gossard, A. C. Two-dimensional magnetotransport in the extreme quantum limit. Phys. Rev. Lett. 48, 1559–1562 (1982). (10.1103/PhysRevLett.48.1559) / Phys. Rev. Lett. by DC Tsui (1982)
  3. Bernevig, B. A. & Zhang, S. C. Quantum spin Hall effect. Phys. Rev. Lett. 96, 106802 (2006). (10.1103/PhysRevLett.96.106802) / Phys. Rev. Lett. by BA Bernevig (2006)
  4. König, M. et al. Quantum spin Hall insulator state in HgTe quantum wells. Science 318, 766–770 (2007). (10.1126/science.1148047) / Science by M König (2007)
  5. Kasprzak, J. et al. Bose-Einstein condensation of exciton polaritons. Nature 443, 409–414 (2006). (10.1038/nature05131) / Nature by J Kasprzak (2006)
  6. Feldmann, J. et al. Optical investigation of Bloch oscillations in a semiconductor superlattice. Phys. Rev. B 46, 7252–7255 (1992). (10.1103/PhysRevB.46.7252) / Phys. Rev. B by J Feldmann (1992)
  7. Alferov, Z. I. Nobel lecture: The double heterostructure concept and its applications in physics, electronics, and technology. Rev. Mod. Phys. 73, 767–782 (2001). (10.1103/RevModPhys.73.767) / Rev. Mod. Phys. by ZI Alferov (2001)
  8. 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)
  9. Novoselov, K. S. et al. Two-dimensional gas of massless Dirac fermions in graphene. Nature 438, 197–200 (2005). (10.1038/nature04233) / Nature by KS Novoselov (2005)
  10. Song, L. et al. Large scale growth and characterization of atomic hexagonal boron nitride layers. Nano Lett. 10, 3209–3215 (2010). (10.1021/nl1022139) / Nano Lett. by L Song (2010)
  11. Wang, Q. H., Kalantar-Zadeh, K., Kis, A., Coleman, J. N. & Strano, M. S. Electronics and optoelectronics of two-dimensional transition metal dichalcogenides. Nat. Nanotechnol. 7, 699–712 (2012). (10.1038/nnano.2012.193) / Nat. Nanotechnol. by QH Wang (2012)
  12. Geim, A. K. & Grigorieva, I. V. Van der waals heterostructures. Nature 499, 419–425 (2013). (10.1038/nature12385) / Nature by AK Geim (2013)
  13. Britnell, L. et al. Field-effect tunneling transistor based on vertical graphene heterostructures. Science 335, 947–950 (2012). (10.1126/science.1218461) / Science by L Britnell (2012)
  14. Georgiou, T. et al. Vertical field-effect transistor based on graphene-WS2 heterostructures for flexible and transparent electronics. Nat. Nanotechnol. 8, 100–103 (2013). (10.1038/nnano.2012.224) / Nat. Nanotechnol. by T Georgiou (2013)
  15. Lin, Y. F. et al. Barrier inhomogeneities at vertically stacked graphene-based heterostructures. Nanoscale 6, 795–799 (2014). (10.1039/C3NR03677D) / Nanoscale by YF Lin (2014)
  16. Yu, W. J. et al. Vertically stacked multi-heterostructures of layered materials for logic transistors and complementary inverters. Nat. Mater. 12, 246–252 (2013). (10.1038/nmat3518) / Nat. Mater. by WJ Yu (2013)
  17. Britnell, L. et al. Strong light-matter interactions in heterostructures of atomically thin films. Science 340, 1311–1314 (2013). (10.1126/science.1235547) / Science by L Britnell (2013)
  18. Yu, W. J. et al. Highly efficient gate-tunable photocurrent generation in vertical heterostructures of layered materials. Nat. Nanotechnol. 8, 952–958 (2013). (10.1038/nnano.2013.219) / Nat. Nanotechnol. by WJ Yu (2013)
  19. Komsa, H. P. & Krasheninnikov, A. V. Electronic structures and optical properties of realistic transition metal dichalcogenide heterostructures from first principles. Phys. Rev. B 88, 085318 (2013). (10.1103/PhysRevB.88.085318) / Phys. Rev. B by HP Komsa (2013)
  20. Sachs, B. et al. Doping mechanisms in graphene-MoS2 hybrids. Appl. Phys. Lett. 103, 251607 (2013). (10.1063/1.4852615) / Appl. Phys. Lett. by B Sachs (2013)
  21. Larentis, S. et al. Band offset and negative compressibility in graphene-MoS2 heterostructures. Nano Lett. 14, 2039–2045 (2014). (10.1021/nl500212s) / Nano Lett. by S Larentis (2014)
  22. Bertolazzi, S., Krasnozhon, D. & Kis, A. Nonvolatile memory cells based on MoS2/graphene heterostructures. ACS Nano 7, 3246–3252 (2013). (10.1021/nn3059136) / ACS Nano by S Bertolazzi (2013)
  23. Choi, M. S. et al. Controlled charge trapping by molybdenum disulfide and graphene in ultrathin heterostructured memory devices. Nat. Commun. 4, 1624 (2013). (10.1038/ncomms2652) / Nat. Commun. by MS Choi (2013)
  24. Gorbachev, R. V. et al. Strong Coulomb drag and broken symmetry in double-layer graphene. Nat. Phys. 8, 896–901 (2012). (10.1038/nphys2441) / Nat. Phys. by RV Gorbachev (2012)
  25. Kim, S. et al. Coulomb drag of massless fermions in graphene. Phys. Rev. B 83, 161401 (2011). (10.1103/PhysRevB.83.161401) / Phys. Rev. B by S Kim (2011)
  26. Ponomarenko, L. A. et al. Tunable metal-insulator transition in double-layer graphene heterostructures. Nat. Phys. 7, 958–961 (2011). (10.1038/nphys2114) / Nat. Phys. by LA Ponomarenko (2011)
  27. Bernardi, M., Palummo, M. & Grossman, J. C. Extraordinary sunlight absorption and one nanometer thick photovoltaics using two-dimensional monolayer materials. Nano Lett. 13, 3664–3670 (2013). (10.1021/nl401544y) / Nano Lett. by M Bernardi (2013)
  28. Zhao, W. J. et al. Evolution of electronic structure in atomically thin sheets of WS2 and WSe2 . ACS Nano 7, 791–797 (2013). (10.1021/nn305275h) / ACS Nano by WJ Zhao (2013)
  29. Shi, H. et al. Exciton dynamics in suspended monolayer and few-layer MoS2 2D crystals. ACS Nano 7, 1072–1080 (2012). (10.1021/nn303973r) / ACS Nano by H Shi (2012)
  30. Sim, S. et al. Exciton dynamics in atomically thin MoS2: Interexcitonic interaction and broadening kinetics. Phys. Rev. B 88, 075434 (2013). (10.1103/PhysRevB.88.075434) / Phys. Rev. B by S Sim (2013)
  31. Wang, Q. et al. Valley carrier dynamics in monolayer molybdenum disulfide from helicity-resolved ultrafast pump-probe spectroscopy. ACS Nano 7, 11087–11093 (2013). (10.1021/nn405419h) / ACS Nano by Q Wang (2013)
  32. Mai, C. et al. Many-body effects in valleytronics: direct measurement of valley lifetimes in single-layer MoS2 . Nano Lett. 14, 202–206 (2013). (10.1021/nl403742j) / Nano Lett. by C Mai (2013)
  33. Dean, C. R. et al. Boron nitride substrates for high-quality graphene electronics. Nat. Nanotechnol. 5, 722–726 (2010). (10.1038/nnano.2010.172) / Nat. Nanotechnol. by CR Dean (2010)
Dates
Type When
Created 10 years, 8 months ago (Nov. 25, 2014, 6:52 a.m.)
Deposited 2 years, 7 months ago (Jan. 5, 2023, 9:35 p.m.)
Indexed 2 weeks, 2 days ago (Aug. 6, 2025, 9:51 a.m.)
Issued 10 years, 8 months ago (Nov. 25, 2014)
Published 10 years, 8 months ago (Nov. 25, 2014)
Published Online 10 years, 8 months ago (Nov. 25, 2014)
Funders 0

None

@article{He_2014, title={Electron transfer and coupling in graphene–tungsten disulfide van der Waals heterostructures}, volume={5}, ISSN={2041-1723}, url={http://dx.doi.org/10.1038/ncomms6622}, DOI={10.1038/ncomms6622}, number={1}, journal={Nature Communications}, publisher={Springer Science and Business Media LLC}, author={He, Jiaqi and Kumar, Nardeep and Bellus, Matthew Z. and Chiu, Hsin-Ying and He, Dawei and Wang, Yongsheng and Zhao, Hui}, year={2014}, month=nov }