REVIEW 3 major objections 5 minor 37 references
Direct observation of locally modified excitonic effect within a moir\'e unit cell in twisted bilayer graphene
T0 review · 3 major / 5 minor · reviewed 2026-08-06 · deepseek-v4-flash
Pith's one-line read The carbon K-edge fine structure of twisted bilayer graphene varies within a single moiré unit cell, showing local linewidth broadening of van Hove peaks caused by stacking-dependent core-exciton lifetimes.
desk verdict Local carbon K-edge EELS mapping inside a TBG moiré cell is new and the raw spectra do differ by region; the 5–50% linewidth broadening and its core-exciton-lifetime interpretation, however, are not yet secured given the heavy fitting and deconvolution. read the letter →
The pith
A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.
The reading
What carries the argument
The load-bearing object is the fine structure of the carbon 1s K-edge, measured by monochromated core-loss EELS at 170 meV energy resolution with an atomically sharp probe whose signal delocalization is about 0.2 nm. This localization allows spectra to be assigned to specific stacking regions, AA (bright), AB/BA (grey), and bridge (dark), within the 1.5 nm moiré cell. The argument proceeds through a five-Gaussian line-shape analysis (P1 to P5) that maps the van Hove peaks to unoccupied saddle-point states $E_A^*$, $E_B^*$, and the minigap state $E_g^*$, and through comparison of the extracted linewidths, which report core-exciton lifetimes. The twist-angle series of the same peaks establishes that the core-level excitations track the same band hybridization seen in optical absorption.
What would settle it
Perform the same core-loss mapping on a moiré cell whose local stacking is independently determined by atomic-resolution STEM images that include lattice relaxation, and check whether the 5 to 50 percent linewidth broadening still tracks the rigid-model AA/AB/bridge assignment; alternatively, compute carbon K-edge core-exciton lifetimes for relaxed AA and AB stackings and compare the predicted linewidth difference with the measured one.
Extended reading notes
Core claim
The central discovery is that the core-level van Hove singularity peaks in the carbon K-edge are not uniform across a moiré unit cell. In a 9.8 degree twisted bilayer graphene, spectra from the ADF-bright (AA-stacked), grey (AB/BA), and dark (bridge) regions at equivalent positions show essentially unchanged peak energies but systematically broader linewidths in the AB and bridge regions. The paper attributes this to shorter core-exciton lifetimes caused by stronger local interlayer interaction and charge transfer, together with modifications of the local band structure. The same position-dependent broadening appears at 6.4 degrees and becomes more pronounced at 4.8 degrees, where lattice reconstruction starts, whereas at 9.8 degrees the peak positions remain nearly fixed across the cell. The authors present this as the first corroboration of locally modified core-exciton behavior inside a moiré unit cell.
Load-bearing premise
The mapping of the three ADF contrast regions to AA, AB/BA, and bridge stacking rests on a rigid-model simulation that ignores out-of-plane displacement and moiré relaxation; if the real local stacking differs from that model, the claimed relation between linewidth and stacking geometry would not follow.
Editorial extensions
If this is right
- Core-loss EELS can serve as a sub-nanometer local probe of unoccupied band structure and exciton lifetimes in moiré materials.
- The twist-angle dependence of the carbon K-edge van Hove peaks means core-level spectroscopy is sensitive to the same interlayer hybridization that controls the optical properties of twisted bilayer graphene.
- Linewidth broadening inside a moiré cell offers a position-dependent measure of interlayer coupling and local charge-transfer rate.
- Extending the method to smaller twist angles could track the onset of lattice reconstruction through local spectral broadening and shifts.
- The same approach could map local excitonic effects in other van der Waals heterostructures beyond graphene.
Reading between the lines
- If the lifetime interpretation holds, core-exciton linewidths could be used to estimate local dielectric screening or electron-hole interaction strength across moiré cells, a quantity the paper does not directly extract.
- The global twist-angle data suggest that core-level van Hove energies track the same band-structure evolution as optical transitions, making core-loss spectroscopy a potential proxy for predicting optical response at twist angles where direct optical measurement is difficult.
- The observed broadening in AB and bridge regions is attributed to faster charge transfer, so a testable extension is to correlate the same spectral maps with local electrochemical or transport measurements at the moiré scale.
- At 4.8 degrees, reconstruction effects appear; a systematic mapping across twist angles near the magic angle could reveal whether lattice relaxation changes the local exciton-lifetime pattern in a detectable way.
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript reports STEM-EELS measurements of the carbon K-edge in twisted bilayer graphene (TBG) with a monochromated 60 kV electron beam. The authors first show that both low-loss and core-loss spectra exhibit twist-angle-dependent features assigned to optical and core-level excitations involving van Hove singularities. They then compare core-loss spectra from different contrast regions within a moiré unit cell at 9.8° and report 5–50% broadenings of five Gaussian components (P1–P5) in AB/BA ('grey') and bridge ('dark') regions relative to AA ('bright') regions, with little peak-position change. They interpret the broadenings as local modifications of core-exciton lifetimes and band structure due to local stacking geometry. The paper includes a twist-angle series from 4.8° to 25.7°, supporting a global trend, and claims the first observation of local variations in core-level van Hove singularity peaks within a single moiré unit cell.
Significance. The reported measurements are technically challenging and potentially important: core-level EELS with 170 meV resolution and an atomically localized probe could in principle reveal local electronic-structure variations inside a moiré unit cell, going beyond global optical and STS studies. The twist-angle dependence of the carbon K-edge fine structure is itself a useful addition, and the authors are careful to acquire spectra from impurity-free regions and to calibrate energy axes with the simultaneously recorded zero-loss peak. However, the central quantitative claim of 5–50% linewidth broadening rests on a multi-Gaussian decomposition after maximum-entropy deconvolution, and the manuscript provides no synthetic or repeatability test to demonstrate that such broadenings are recovered reliably from the measured spectra. The stacking assignment also depends on a rigid-model STEM simulation that neglects relaxation. If the broadening claim survives validation, the paper would open a new route to local core-exciton physics in moiré materials; at present that claim is not yet secured.
major comments (3)
- [Fig. 4c,d and Data analysis] The central result of 5–50% linewidth broadening is extracted from five-Gaussian fits performed after maximum-entropy deconvolution with the 170 meV zero-loss peak as the kernel. The smallest reported broadenings are tens of meV, comparable to or smaller than the instrument resolution before deconvolution, and the five components overlap strongly. Maximum-entropy deconvolution can introduce regularization-dependent line-shape changes, and a spectrum with slightly different relative intensities, a small energy offset, or a different continuum background can be equivalently represented by broader components. The error bars shown in Fig. 4d are variance–covariance fitting errors only and do not include model degeneracy, run-to-run variation, or deconvolution uncertainty. A blinded synthetic test—where known spectra with prescribed peak widths are convolved with the measured zero-loss peak, processed with the same deconvolution and fitting protocol, and compared to the input—is needed to establish that the reported 5–50% differences are recoverable. Without such a test, the linewidth differences and their core-exciton-lifetime interpretation are not secured.
- [Fig. 4a,b] The assignment of bright, grey, and dark ADF regions to AA, AB/BA, and bridge stacking relies on a rigid-model STEM simulation that explicitly ignores out-of-plane displacement and moiré relaxation, as stated in the text: 'no out-of-plane displacement nor the relaxation of moiré were considered' and the influence of higher-order moiré patterns is 'beyond the scope of this study.' Since the local stacking geometry is the independent variable in the paper's main claim, this assignment needs experimental validation—for example, a quantitative comparison between the simulated and experimental ADF profiles, or an assessment of how relaxation at 9.8° and 6.4° modifies the expected contrast in each region. If the actual local stacking differs from the rigid model, the correlation between linewidth broadening and stacking geometry would be undermined.
- [Conclusion and Discussion of lifetime] The interpretation that the observed broadening 'implies a reduction in the lifetime of core excitons' is presented without an independent estimate of core-hole lifetimes or a core-hole calculation; the paper explicitly defers such theory to future work. This leaves the possibility that the apparent broadening is caused by unresolved band-structure shifts, local strain, or changes in relative intensities and continuum background rather than by a genuine lifetime change. The TMDC charge-transfer analogy is suggestive but not a quantitative substitute. At minimum, the authors should provide an estimate of the expected core-exciton lifetime variation from published core-hole widths for carbon and from local interlayer coupling arguments, and should explicitly state that the current data cannot distinguish lifetime effects from band-structure contributions.
minor comments (5)
- [Fig. 3a text] The text says the fine structure 'includes four components of C1s excitations' to EA*, EB*, and Eg*, but then describes five components, P1–P5; please clarify the counting and the exact assignment of each component.
- [Data analysis] The Data analysis section refers to 'Extended Figure 3' while the supplement labels the corresponding item Supplementary Figure 3; please make the referencing consistent.
- [Fig. 2c] The sentence 'EB starts to separate form EM' contains a typo ('form' should be 'from'); please correct it.
- [Data analysis and Supplementary Fig. 4] For the 6.4° and 4.8° data, the shifts of 200–300 meV and the local-structure dependence are stated without a table or plot of the fit parameters with correlation information; adding a supplementary table of all fitted positions, widths, and intensities would improve reproducibility.
- [Experimental Section] The choice of a broad Gaussian component for energy losses above 286.5 eV and the fixed overall π* envelope extracted from single-layer graphene should be described more explicitly, including how sensitive the P1–P5 widths are to reasonable variations of these fixed components.
Circularity Check
No significant circularity: the line-shape parameters are fit directly to measured EELS spectra and the van Hove singularity labels come from external published band theory, so the central observation is not an input disguised as a result.
full rationale
The paper's central observational claim is that carbon K-edge fine-structure peaks (P1–P5), assigned to twisted-bilayer-graphene van Hove singularities, show different fitted widths in the bright, grey, and dark regions of a moiré unit cell. The line-shape analysis is performed on measured spectra: the five Gaussian components are fitted with positions, intensities, and widths free except for an ordering constraint, while the broad π* background is fixed from a single-layer spectrum. The stacking labels (AA, AB/BA, bridge) are taken from a rigid-model STEM image simulation, not from the EELS fit, so the correlation between region and broadening is not imposed by construction. The assignment of P1–P5 to Eg*, EA*, and EB* is taken from published band-structure calculations, including Moon–Koshino (ref. 7) in which a co-author is involved; however, that theory is an external, parameter-free calculation whose assumptions do not include the measured EELS linewidths, and it is used as an interpretive template rather than as the source of the fitted broadening. The lifetime interpretation (linewidth broadening implies shorter core-exciton lifetime) is a standard physical inference, and the paper explicitly defers the needed core-hole calculations to future work, stating that they are 'beyond the scope of this study'. The main vulnerabilities identified by a skeptical reader—deconvolution with a 170 meV zero-loss kernel, strongly overlapping Gaussians, and the rigid-model stacking assignment—are methodological robustness concerns, not circular reductions of the result to its inputs. No equation, fitted parameter, or cited theorem is reused as its own prediction, so no circular step can be quoted and exhibited. Accordingly, the circularity score is 0.
Assumptions & free parameters
free parameters (2)
- P1-P5 Gaussian peak positions, widths, and intensities =
Varies with twist angle and local region (Supp Fig. 3, Fig. 4d)
- Fixed overall pi* resonance position and width =
Extracted from single-layer graphene and held constant in all fits
assumptions (5)
- domain assumption Dipole scattering dominates bright-field EELS, so optically allowed van Hove transitions are detected.
- domain assumption Core-loss signal delocalization at the carbon K-edge at 60 kV is about 0.2 nm, enabling sub-unit-cell probing.
- domain assumption Gaussian line shapes approximate all spectral components because the zero-loss peak is Gaussian-like under the experimental conditions.
- domain assumption Band structure and van Hove singularity positions from previous TBG theory (Moon & Koshino, refs. 7 and 28) apply to the measured samples.
- domain assumption ADF contrast regions (bright, grey, dark) correspond to AA, AB/BA, and bridge stacking as simulated with a rigid model without relaxation.
Cite this review
Pith. "Pith review of Direct observation of locally modified excitonic effect within a moir\'e unit cell in twisted bilayer graphene." pith.science (2026). https://pith.science/paper/NWKIOSRS
@misc{pith2026250705560,
author = {Pith},
title = {Pith review of: Direct observation of locally modified excitonic effect within a moir\'e unit cell in twisted bilayer graphene},
year = {2026},
howpublished = {\url{https://pith.science/paper/NWKIOSRS}},
note = {Machine review of arXiv:2507.05560}
}
read the original abstract
Bilayer graphene, forming moir\'e superlattices, possesses distinct electronic and optical properties derived from the hybridization of energy band and the emergence of van Hove singularities depending on its twist angle. Extensive research has been conducted on the global characteristics of moir\'e superlattice induced by long-range periodicity. However, limited attention has been given to the local properties within a moir\'e unit cell, which undoubtedly differ due to the variations in three-dimensional atomic arrangement. Here we demonstrate the highly localized excitations of carbon 1s electrons to unoccupied van Hove singularities in a twisted bilayer graphene using an electron energy loss spectroscopy based on a monochromated transmission electron microscope. The core-level excitations associated with the van Hove singularities show a systematic twist angle dependence which is analogous to the optical excitations. Furthermore, local variations in those core-level van Hove singularity peaks within a moir\'e unit cell have been corroborated for the first time, which can originate from core-exciton lifetimes and band modifications influenced by the local stacking geometry.
Figures
Figures from the paper (1 more)
Reference graph
Works this paper leans on
-
[1]
Lau, C. N.; Bockrath, M. W.; Mak, K. F.; Zhang, F., Reproducibility in the fabrication and physics of moiré materials. Nature 2022, 602, 41-50, DOI: 10.1038/s41586-021-04173-z
-
[2]
Tran, K.; Moody, G.; Wu, F.; Lu, X.; Choi, J.; Kim, K.; Rai, A.; Sanchez, D. A.; Quan, J.; Singh, A.; Embley, J.; Zepeda, A.; Campbell, M.; Autry, T.; Taniguchi, T.; Watanabe, K.; Lu, N.; Banerjee, S. K.; Silverman, K. L.; Kim, S.; Tutuc, E.; Yang, L.; MacDonald, A. H.; Li, X., Evidence for moiré excitons in van der Waals heterostructures. Nature 2019, 56...
-
[3]
L.; Rivera, P.; Yu, H.; Wilson, N
Seyler, K. L.; Rivera, P.; Yu, H.; Wilson, N. P.; Ray, E. L.; Mandrus, D. G.; Yan, J.; Yao, W.; Xu, X., Signatures of moiré-trapped valley excitons in MoSe2/WSe2 heterobilayers. Nature 2019, 567, 66-70, DOI: 10.1038/s41586-019-0957-1
-
[4]
Jin, C.; Regan, E. C.; Yan, A.; Iqbal Bakti Utama, M.; Wang, D.; Zhao, S.; Qin, Y.; Yang, S.; Zheng, Z.; Shi, S.; Watanabe, K.; Taniguchi, T.; Tongay, S.; Zettl, A.; Wang, F., Observation of moiré excitons in WSe2/WS2 heterostructure superlattices. Nature 2019, 567, 76-80, DOI: 10.1038/s41586-019-0976-y
-
[5]
Kerelsky, A.; McGilly, L. J.; Kennes, D. M.; Xian, L.; Yankowitz, M.; Chen, S.; Watanabe, K.; Taniguchi, T.; Hone, J.; Dean, C.; Rubio, A.; Pasupathy, A. N., Maximized electron interactions at the magic angle in twisted bilayer graphene. Nature 2019, 572, 95-100, DOI: 10.1038/s41586-019-1431-9
-
[6]
Y., Charge order and broken rotational symmetry in magic-angle twisted bilayer graphene
Jiang, Y.; Lai, X.; Watanabe, K.; Taniguchi, T.; Haule, K.; Mao, J.; Andrei, E. Y., Charge order and broken rotational symmetry in magic-angle twisted bilayer graphene. Nature 2019, 573, 91-95, DOI: 10.1038/s41586-019-1460-4
-
[7]
Physical Review B 2013, 87, 205404, DOI: 10.1103/PhysRevB.87.205404
Moon, P.; Koshino, M., Optical absorption in twisted bilayer graphene. Physical Review B 2013, 87, 205404, DOI: 10.1103/PhysRevB.87.205404
-
[8]
H., Moiré bands in twisted double-layer graphene
Bistritzer, R.; MacDonald, A. H., Moiré bands in twisted double-layer graphene. Proc. Natl. Acad. Sci. U. S. A. 2011, 108, 12233-12237, DOI: 10.1073/pnas.1108174108
Show all 37 references
-
[9]
Nam, N. N. T.; Koshino, M., Lattice relaxation and energy band modulation in twisted bilayer graphene. Physical Review B 2017, 96, 075311, DOI: 10.1103/PhysRevB.96.075311
2017 doi
-
[10]
Physical Review B 2007, 75, 201404(R), DOI: 10.1103/PhysRevB.75.201404
Nemec, N.; Cuniberti, G., Hofstadter butterflies of bilayer graphene. Physical Review B 2007, 75, 201404(R), DOI: 10.1103/PhysRevB.75.201404
2007 doi
-
[11]
H., Moiré butterflies in twisted bilayer graphene
Bistritzer, R.; MacDonald, A. H., Moiré butterflies in twisted bilayer graphene. Physical Review B 2011, 84, 035440, DOI: 10.1103/PhysRevB.84.035440
2011 doi
-
[12]
F.; Dean, C
Yankowitz, M.; Chen, S.; Polshyn, H.; Zhang, Y.; Watanabe, K.; Taniguchi, T.; Graf, D.; Young, A. F.; Dean, C. R., Tuning superconductivity in twisted bilayer graphene. Science 2019, 363, 1059-1064, DOI: 10.1126/science.aav1910
2019 doi
-
[13]
P.; Wong, D.; Lee, R
Oh, M.; Nuckolls, K. P.; Wong, D.; Lee, R. L.; Liu, X.; Watanabe, K.; Taniguchi, T.; Yazdani, A., Evidence for unconventional superconductivity in twisted bilayer graphene. Nature 2021, 600, 240-245, DOI: 10.1038/s41586-021-04121-x
2021 doi
-
[14]
K.; Li, X., Excitons in semiconductor moiré superlattices
Huang, D.; Choi, J.; Shih, C. K.; Li, X., Excitons in semiconductor moiré superlattices. Nature Nanotechnology 2022, 17, 227-238, DOI: 10.1038/s41565-021- 01068-y
2022 doi
-
[15]
H.; Utikal, T.; Weisenburger, S.; Giessen, H.; Klitzing, K
Chae, D. H.; Utikal, T.; Weisenburger, S.; Giessen, H.; Klitzing, K. V.; Lippitz, M.; Smet, J., Excitonic fano resonance in free-standing graphene. Nano Letters 2011, 11, 1379-1382, DOI: 10.1021/nl200040q
2011 doi
-
[16]
W.; Liang, Y.; Brown, L.; Yang, L.; Park, J., Van Hove singularities and excitonic effects in the optical conductivity of twisted bilayer graphene
Havener, R. W.; Liang, Y.; Brown, L.; Yang, L.; Park, J., Van Hove singularities and excitonic effects in the optical conductivity of twisted bilayer graphene. Nano Letters 2014, 14, 3353-3357, DOI: 10.1021/nl500823k
2014 doi
-
[17]
F.; Caraiani, C.; Zhang, Y
Wang, T.; Liu, Q. F.; Caraiani, C.; Zhang, Y. P.; Wu, J.; Chan, W. L., Effect of Interlayer Coupling on Ultrafast Charge Transfer from Semiconducting Molecules to Mono- and Bilayer Graphene. Physical Review Applied 2015, 4, 014016, DOI: 10.1103/PhysRevApplied.4.014016
2015 doi
-
[18]
Nature Physics 2019, 15, 1174-1180, DOI: 10.1038/s41567-019-0606-5
Choi, Y.; Kemmer, J.; Peng, Y.; Thomson, A.; Arora, H.; Polski, R.; Zhang, Y.; Ren, H.; Alicea, J.; Refael, G.; von Oppen, F.; Watanabe, K.; Taniguchi, T.; Nadj- Perge, S., Electronic correlations in twisted bilayer graphene near the magic angle. Nature Physics 2019, 15, 1174-...
2019 doi
-
[19]
M.; Tsai, H
Wong, D.; Wang, Y.; Jung, J.; Pezzini, S.; DaSilva, A. M.; Tsai, H. Z.; Jung, H. S.; Khajeh, R.; Kim, Y.; Lee, J.; Kahn, S.; Tollabimazraehno, S.; Rasool, H.; Watanabe, K.; Taniguchi, T.; Zettl, A.; Adam, S.; MacDonald, A. H.; Crommie, M. F., Local spectroscopy of moiré-induce...
2015 doi
-
[20]
H.; Hovden, R.; Tsen, A
Yoo, H.; Engelke, R.; Carr, S.; Fang, S.; Zhang, K.; Cazeaux, P.; Sung, S. H.; Hovden, R.; Tsen, A. W.; Taniguchi, T.; Watanabe, K.; Yi, G. C.; Kim, M.; Luskin, M.; Tadmor, E. B.; Kaxiras, E.; Kim, P., Atomic and electronic reconstruction at the van der Waals interface in twis...
2019 doi
-
[21]
K.; Lin, Y
Gogoi, P. K.; Lin, Y. C.; Senga, R.; Komsa, H. P.; Wong, S. L.; Chi, D.; Krasheninnikov, A. V.; Li, L. J.; Breese, M. B. H.; Pennycook, S. J.; Wee, A. T. S.; Suenaga, K., Layer Rotation-Angle-Dependent Excitonic Absorption in van der Waals Heterostructures Revealed by Electron...
2019 doi
-
[22]
C.; Motoyama, A.; Solis-Fernandez, P.; Matsumoto, R.; Ago, H.; Suenaga, K., Coupling and Decoupling of Bilayer Graphene Monitored by Electron Energy Loss Spectroscopy
Lin, Y. C.; Motoyama, A.; Solis-Fernandez, P.; Matsumoto, R.; Ago, H.; Suenaga, K., Coupling and Decoupling of Bilayer Graphene Monitored by Electron Energy Loss Spectroscopy. Nano Letters 2021, 21, 10386-10391, DOI: 10.1021/acs.nanolett.1c03689
2021 doi
-
[23]
H.; Blach, D
Susarla, S.; Naik, M. H.; Blach, D. D.; Zipfel, J.; Taniguchi, T.; Watanabe, K.; Huang, L.; Ramesh, R.; da Jornada, F. H.; Louie, S. G.; Ercius, P.; Raja, A., Hyperspectral imaging of exciton confinement within a moiré unit cell with a subnanometer electron probe. Science 2022...
2022 doi
-
[24]
F., Limits to the spatial, energy and momentum resolution of electron energy-loss spectroscopy
Egerton, R. F., Limits to the spatial, energy and momentum resolution of electron energy-loss spectroscopy. Ultramicroscopy 2007, 107, 575-586, DOI: 10.1016/j.ultramic.2006.11.005
2007 doi
-
[25]
Nature 2010, 468, 1088-1090, DOI: 10.1038/nature09664
Suenaga, K.; Koshino, M., Atom-by-atom spectroscopy at graphene edge. Nature 2010, 468, 1088-1090, DOI: 10.1038/nature09664
2010 doi
-
[26]
Nano Letters 2016, 16, 3661-3667, DOI: 10.1021/acs.nanolett.6b00825
Senga, R.; Pichler, T.; Suenaga, K., Electron Spectroscopy of Single Quantum Objects To Directly Correlate the Local Structure to Their Electronic Transport and Optical Properties. Nano Letters 2016, 16, 3661-3667, DOI: 10.1021/acs.nanolett.6b00825
2016 doi
-
[27]
Microscopy (Oxf) 2013, 62, 23-41, DOI: 10.1093/jmicro/dfs134
Hosokawa, F.; Sawada, H.; Kondo, Y.; Takayanagi, K.; Suenaga, K., Development of Cs and Cc correctors for transmission electron microscopy. Microscopy (Oxf) 2013, 62, 23-41, DOI: 10.1093/jmicro/dfs134
2013 doi
-
[28]
Materials Today Physics 2020, 14, 100238, DOI: 10.1016/j.mtphys.2020.100238
Wang, J.; Bo, W.; Ding, Y.; Wang, X.; Mu, X., Optical, optoelectronic, and photoelectric properties in moiré superlattices of twist bilayer graphene. Materials Today Physics 2020, 14, 100238, DOI: 10.1016/j.mtphys.2020.100238
2020
-
[29]
H.; Cohen, M
Yang, L.; Deslippe, J.; Park, C. H.; Cohen, M. L.; Louie, S. G., Excitonic effects on the optical response of graphene and bilayer graphene. Physical Revew Letters 2009, 103, 186802, DOI: 10.1103/PhysRevLett.103.186802
2009 doi
-
[30]
Physical Review Letters 2020, 124, 087401, DOI: 10.1103/PhysRevLett.124.087401
Hong, J.; Senga, R.; Pichler, T.; Suenaga, K., Probing Exciton Dispersions of Freestanding Monolayer WSe2 by Momentum-Resolved Electron Energy-Loss Spectroscopy. Physical Review Letters 2020, 124, 087401, DOI: 10.1103/PhysRevLett.124.087401
2020 doi
-
[31]
Nano Lett 2018, 18, 3920-3925, DOI: 10.1021/acs.nanolett.8b01284
Senga, R.; Pichler, T.; Yomogida, Y.; Tanaka, T.; Kataura, H.; Suenaga, K., Direct Proof of a Defect-Modulated Gap Transition in Semiconducting Nanotubes. Nano Lett 2018, 18, 3920-3925, DOI: 10.1021/acs.nanolett.8b01284
2018 doi
-
[32]
M.; Van Winkle, M.; Lyssenko, A.; Taniguchi, T.; Watanabe, K.; Viswanathan, V.; Bediako, D
Yu, Y.; Zhang, K.; Parks, H.; Babar, M.; Carr, S.; Craig, I. M.; Van Winkle, M.; Lyssenko, A.; Taniguchi, T.; Watanabe, K.; Viswanathan, V.; Bediako, D. K., Tunable angle-dependent electrochemistry at twisted bilayer graphene with moiré flat bands. Nature Chemistry 2022, 14, 2...
2022 doi
-
[33]
Carbon 2016, 96, 1008-1013, DOI: 10.1016/j.carbon.2015.10.061
Kato, R.; Minami, S.; Koga, Y.; Hasegawa, M., High growth rate chemical vapor deposition of graphene under low pressure by RF plasma assistance. Carbon 2016, 96, 1008-1013, DOI: 10.1016/j.carbon.2015.10.061
2016 doi
-
[34]
C.; Jin, C.; Lee, J
Lin, Y. C.; Jin, C.; Lee, J. C.; Jen, S. F.; Suenaga, K.; Chiu, P. W., Clean transfer of graphene for isolation and suspension. ACS Nano 2011, 5, 2362-2368, DOI: 10.1021/nn200105j
2011 doi
-
[35]
C.; Lu, C
Lin, Y. C.; Lu, C. C.; Yeh, C. H.; Jin, C.; Suenaga, K.; Chiu, P. W., Graphene annealing: how clean can it be? Nano Lett 2012, 12, 414-419, DOI: 10.1021/nl203733r
2012 doi
-
[36]
Physical Review B 2007, 75, DOI: 10.1103/PhysRevB.75.235437
Kramberger, C.; Rauf, H.; Shiozawa, H.; Knupfer, M.; Büchner, B.; Pichler, T.; Batchelor, D.; Kataura, H., Unraveling van Hove singularities in x-ray absorption response of single-wall carbon nanotubes. Physical Review B 2007, 75, DOI: 10.1103/PhysRevB.75.235437
2007 doi
-
[37]
De Blauwe, K.; Mowbray, D. J.; Miyata, Y.; Ayala, P.; Shiozawa, H.; Rubio, A.; Hoffmann, P.; Kataura, H.; Pichler, T., Combined experimental andab initiostudy of the electronic structure of narrow-diameter single-wall carbon nanotubes with predominant (6,4),(6,5) chirality. Ph...
2010 doi
Reviewed August 6, 2026 · model on record in the stance chip above.
Discussion (0). Sign in to comment.