REVIEW 2 major objections 4 minor 105 references
Probing topological Floquet states in graphene with ultrafast terahertz scanning tunneling microscopy
T0 review · 2 major / 4 minor · reviewed 2026-08-02 · deepseek-v4-flash
Pith's one-line read A terahertz scanning tunneling microscope can directly image the light-induced topological gaps and chiral edge states of driven graphene at atomic scale.
desk verdict Sound theory proposal for THz-STM as a Floquet probe; the predictions are concrete and the caveats are acknowledged, but the 'direct detection' claim is conditional on the idealized junction. 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 workhorse is a nonequilibrium Green's-function formalism for time-dependent tunneling, in which the tip self-energy is local in space and carries the THz bias as a time-dependent phase, and the substrate acts as a thermal reservoir in the wide-band limit. In the Floquet steady state, the cycle-averaged current is expressed in a Floquet replica space as a convolution of the occupied and total Floquet LDOS at the tip position; this is the identity that turns a THz-STM rectified current into a local, energy-resolved Floquet spectrum. Around it sits the minimal-coupling substitution of the vector potential into the graphene hopping phases, which produces a circularly-polarized-drive mass ter
What would settle it
A THz-STM experiment on undriven graphene, or on graphene driven with linearly polarized light at the same intensity, should show no conductance dip at half the photon energy; the Floquet interpretation predicts that dip only for circularly polarized drive. Equally, reversing the pump helicity should move the edge-state conductance peaks and reverse the impurity-induced LDOS asymmetry. If instead the same spectral features appear for all polarizations, the signal is a junction artifact rather than a Floquet gap.
Extended reading notes
Core claim
The central claim is that a THz-STM junction, driven by a THz bias pulse while the sample is dressed by a circular pump, records a rectified charge whose derivative with respect to peak bias reproduces the Floquet local density of states. In the steady-state limit the cycle-averaged current is exactly a convolution of the occupied Floquet LDOS and the full Floquet LDOS, with the tip acting as a local, energy-resolved filter at a single lattice site. The authors demonstrate that this gives a plateau and a conductance dip at the Floquet hybridization gap, edge-localized conductance peaks in ribbons down to about thirty unit cells wide, and Fourier-visible scattering patterns that reconstruct t
Load-bearing premise
The predictions assume the pump can be treated as a spatially homogeneous in-plane plane wave inside the sample with no field in the tunneling gap, so that tip-induced near-field gradients, out-of-plane pump components, and photon-assisted junction dressing do not distort the measured current.
Editorial extensions
If this is right
- THz-STM can resolve the Floquet bulk gap locally, in real space, rather than averaged over macroscopic areas.
- Chiral Floquet edge states appear as conductance peaks at ribbon edges and vanish when the ribbon narrows below the localization length, giving a concrete width scale for edge protection.
- Floquet quasiparticle interference maps reconstruct the edge-state band dispersion and can image the absence of backscattering.
- A chiral impurity creates a helicity-dependent LDOS enhancement or suppression that identifies the chirality of the edge mode.
- The tunneling formalism applies to any periodically driven sample, not only graphene, so the same protocol can probe other driven quantum materials.
Reading between the lines
- If the local probe works as claimed, it should reveal nanoscale patches of topological and trivial Floquet regions in inhomogeneous samples, since the signal is site-specific; the authors note such patches are expected but do not simulate them.
- The rectified-charge readout effectively integrates over a bias window set by the THz pulse; comparing different pulse shapes could separate instantaneous-bias artifacts from true Floquet LDOS, a testable extension the paper only sketches.
- The gap signatures could be used as a quantitative pump-helicity detector: reversing circular polarization should flip the sign of the edge-state dichroism, providing a direct check.
- Extending to cavity-modified environments, as the paper's discussion anticipates, would let the nanogap act as a tunable electromagnetic reservoir that shapes the Floquet dressing itself.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript proposes THz-STM as a real-space, energy-resolved probe of Floquet topological states in graphene. The authors derive a nonequilibrium Green's-function tunneling formalism for time-periodic and pulsed drives, reducing the cycle-averaged current in the Floquet steady state to a convolution of the sample Floquet LDOS [Eq. (19)]. They then apply this formalism to bulk graphene and zigzag nanoribbons, predicting that dynamical Floquet gaps appear as dips in dQ_rect/dV_pk, that chiral edge states can be imaged at ribbon boundaries, that Floquet quasiparticle interference can reconstruct edge-mode dispersions, and that a chiral impurity produces a helicity-dependent LDOS signature. The paper is clearly written, the derivations follow standard Meir-Wingreen/NEGF methods, and the numerical parameters are stated transparently, including a candid admission that some ribbon calculations use driving parameters that are not experimentally realistic.
Significance. If the predictions are robust, the paper offers a genuinely new route to nanoscale, energy-resolved probing of light-induced topological states, complementing trARPES and transport. The formal reduction to a Floquet-LDOS expression is useful and likely to be adopted by others. The paper is also honest about its main limitations, which is a strength. However, the headline claim of 'direct local detection' depends on an idealized separation between the optical pump and the STM junction that is acknowledged but not quantified, and the ribbon-width results are obtained for strongly exaggerated gap parameters. These issues do not invalidate the formalism, but they do mean that the paper currently reads as a proof-of-principle proposal rather than an experimentally calibrated prediction.
major comments (2)
- [§III B, Fig. 3] The nanoribbon simulations use E0 = 10 MV/cm and ℏΩ = 1.5 eV, which the authors themselves state cannot be achieved in realistic experimental settings. The claim that edge-state protection breaks down below N = 10 is therefore parameter-specific. Since the edge-state decay length scales as ξ ~ 2ℏv_F/Δ, the crossover ribbon width for a realistic Floquet gap of order 10 meV would be orders of magnitude larger than the N = 10 value shown in Fig. 3(c). I do not object to proof-of-principle parameters, but the manuscript should either provide the scaling of the breakdown width with Δ, or clearly state that the N = 10 threshold is an artifact of the numerical parameters and not a prediction for experiments.
- [§III D, Fig. 5] The proposed 'smoking-gun' chirality probe uses a Haldane-like complex next-nearest-neighbor hopping iγ' with γ' = 0.7 eV localized to a single edge-adjacent hexagon. This is an ad hoc impurity model, and the chosen coupling is comparable to the artificially large Floquet gap used in the ribbon calculations. The predicted circular dichroism in the LDOS could depend sensitively on the impurity strength, spatial extent, and exact realization (magnetic adatom versus strain-induced gauge flux versus Haldane mass patch). A sensitivity analysis with respect to γ' and impurity position is needed before this can be presented as a robust experimental signature.
minor comments (4)
- [Appendix B, Eq. (B4)] The T-matrix expression in Eq. (B4) is notationally unclear: the objects v, v∞, and the projector |0⟩⟨0| have different dimensionalities, and the final equality appears to conflate a scalar defect strength with the full Floquet-replica structure. Please define all quantities carefully.
- [§III A, Eq. (27)] The definition of V_pk as max[V_DC + V_THz(t)] depends on the carrier-envelope phase φ_CEP. The text states φ_CEP = 2π/3 but then describes the amplitude as V0. Please clarify how V_pk is computed for a non-zero CEP and how it is related to the plotted horizontal axis.
- [Fig. 3 caption] The blue curves in Fig. 3(b) are described as 'the THz probe pulse with variable amplitude', but the vertical axis of the quasienergy spectrum is in energy units. The caption should explain that the bias waveforms are overlaid schematically and not to scale.
- [§III C] The term 'Floquet quasiparticle interference' is used for standing-wave patterns generated by hard-wall backscattering in a narrow ribbon, which differs from conventional impurity-induced QPI. Please define the term explicitly at first use and justify why the same name is appropriate.
Circularity Check
No significant circularity found: the paper's predictions are forward simulations from stated drive parameters, with no fitted observables and no load-bearing self-citations.
full rationale
The paper derives a nonequilibrium Green's-function tunneling formula (Eq. 19) from standard Meir–Wingreen theory and a wide-band-limit tip self-energy. The result is an analytical identity expressing the cycle-averaged current in terms of the Floquet LDOS. No target observable is used to adjust parameters: the Floquet gaps and edge-state features are computed directly from the Peierls-substituted graphene Hamiltonian at explicitly stated drive amplitudes and photon energies, and the simulated current/conductance is then evaluated from the same Green's functions. This is a self-consistent forward calculation, so the appearance of conductance dips near eV = ħΩ/2 is a derived consequence of the model, not an input extracted from data. The tunneling formalism is cited to independent prior work (Refs. 64, 69–72), and author self-citations (e.g., Refs. 32, 85, 100) are peripheral and not load-bearing for the central derivation. The paper explicitly flags the idealized in-plane homogeneous pump assumption and neglect of junction dressing as a 'central challenge' (Sec. IV) rather than concealing it; this is a correctness/feasibility limitation, not a circular step. There is no self-definitional reduction, no fitted-input-called-prediction, no imported uniqueness theorem, and no renaming of a known result as a new one.
Assumptions & free parameters
free parameters (9)
- Pump field amplitude E0 =
350 kV/cm (bulk); 10 MV/cm (ribbons)
- Pump photon energy hbar*Omega =
0.4 eV (bulk); 1.5 eV (ribbons)
- Reservoir broadenings Gamma_s, Gamma_t =
10/20 meV (Gamma_s); 0.2/0.4 meV (Gamma_t)
- Temperature T =
8 K (bulk); 16 K (ribbons)
- THz probe pulse parameters =
sigma_probe=80/50 fs, nu=3 THz, phi_CEP=2pi/3
- Static bias mu_s/mu_t =
mu_t=0.125/0.55 eV, mu_s=0
- Chiral impurity coupling gamma' =
0.7 eV
- Hard-wall potential V_infinity =
10^7 eV
- Ribbon width N =
70, 50, 30, 10 unit cells
assumptions (9)
- domain assumption Graphene electron dynamics is described by a non-interacting tight-binding model with Peierls substitution for the pump field.
- domain assumption Tip and substrate reservoirs are described by the wide-band limit with featureless spectral functions and thermal equilibrium occupations.
- domain assumption The tip backaction on the sample dynamics is negligible because the substrate coupling is much stronger than the tip coupling.
- domain assumption The circularly polarized pump is a homogeneous in-plane plane wave and the pump field is zero inside the vacuum tunneling gap.
- domain assumption Under continuous-wave driving the system reaches a Floquet steady state via reservoir dissipation.
- ad hoc to paper A local chiral impurity can be modeled by Haldane-like complex next-nearest-neighbor hopping i*gamma' within a single edge-adjacent hexagon.
- domain assumption Edge-state backscattering in the QPI setup can be modeled by an infinite hard-wall potential and treated with the Floquet T-matrix formalism.
- standard math Fermi functions can be accurately represented by a Pade pole expansion with Npole=80 and the time propagation is convergent with the stated time steps.
- standard math Truncating the Floquet replica space at 10 replicas is sufficient for all reported results.
Cite this review
Pith. "Pith review of Probing topological Floquet states in graphene with ultrafast terahertz scanning tunneling microscopy." pith.science (2026). https://pith.science/paper/BIOFJRQI
@misc{pith2026260214875,
author = {Pith},
title = {Pith review of: Probing topological Floquet states in graphene with ultrafast terahertz scanning tunneling microscopy},
year = {2026},
howpublished = {\url{https://pith.science/paper/BIOFJRQI}},
note = {Machine review of arXiv:2602.14875}
}
read the original abstract
Floquet control of band topology is a central theme in ultrafast quantum materials science. Established experimental probes of light-induced topological states include ultrafast transport and time- and angle-resolved photoemission spectroscopy, each with important strengths but also well-known limitations. Here we propose ultrafast terahertz scanning tunneling microscopy (THz-STM) as a real space energy-resolved probe of Floquet physics. We show that THz-STM enables direct local detection of bulk Floquet gaps and distinct Floquet edge state signatures. We derive a nonequilibrium Green's-function formalism for time-dependent tunneling that directly extends standard STM theory and provides an intuitive interpretation of rectified ultrafast tunneling currents. We apply the approach to bulk graphene and graphene nanoribbons of variable width. For the bulk, we show that THz-STM provides direct spectroscopic access to Floquet-induced gap openings, and we contrast pulsed pump-probe protocols with the continuous-wave Floquet steady-state limit. For finite ribbons, we demonstrate time- and space-resolved imaging of Floquet-induced topological edge states and identify the ribbon-width scale below which edge state protection breaks down. We further show how band structures of graphene nanoribbons and Floquet chiral edge modes can be reconstructed via Floquet quasiparticle interference. Finally we demonstrate that chiral impurities that break time-reversal symmetry induce characteristic spatial THz-STM signatures that can be used as a direct probe of Floquet edge state chirality.
Figures
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Reference graph
Works this paper leans on
-
[1]
The result is an adaption of the Meir-Wingreen formula [64, 69], and has been applied to similar tunneling problems in previous studies [70–72]
Real-time formalism In the following section, we sketch the derivation of the nonequilibrium tunneling formula. The result is an adaption of the Meir-Wingreen formula [64, 69], and has been applied to similar tunneling problems in previous studies [70–72]. We model the ultrafast STM measurements within the nonequilibrium Green’s function formalism. Here, ...
-
[2]
Berry- flux
Floquet tunneling formalism As an instructive limiting case, we consider a continuous-wave (CW) drive modeled by the time- periodic Hamiltonian ˆh(t) = ˆh(t+T) and ignore the time dependence of the bias by settingV THz(t) = 0. The reser- voir coupling allows the heat from the drive to be dissi- pated such that a Floquet steady state is attained [73– 80]. ...
2024
-
[3]
I. Radu, K. Vahaplar, C. Stamm, T. Kachel, N. Pontius, H. A. D¨ urr, T. A. Ostler, J. Barker, R. F. L. Evans, R. W. Chantrell, A. Tsukamoto, A. Itoh, A. Kirilyuk, T. Rasing, and A. V. Kimel, Nature472, 205 (2011)
2011
-
[4]
D. N. Basov, R. D. Averitt, and D. Hsieh, Nature Mater 16, 1077 (2017)
2017
-
[5]
De La Torre, D
A. De La Torre, D. M. Kennes, M. Claassen, S. Gerber, J. W. McIver, and M. A. Sentef, Reviews of Modern Physics93, 041002 (2021)
2021
-
[6]
T. F. Nova, A. S. Disa, M. Fechner, and A. Cavalleri, Science364, 1075 (2019)
2019
-
[7]
A. S. Disa, M. Fechner, T. F. Nova, B. Liu, M. F¨ orst, D. Prabhakaran, P. G. Radaelli, and A. Cavalleri, Nat. Phys.16, 937 (2020). 16
2020
-
[8]
X. Wang, C. Xiao, H. Park, J. Zhu, C. Wang, T. Taniguchi, K. Watanabe, J. Yan, D. Xiao, D. R. Gamelin, W. Yao, and X. Xu, Nature604, 468 (2022)
2022
Show all 105 references
-
[9]
Wandel, F
S. Wandel, F. Boschini, E. H. da Silva Neto, L. Shen, M. X. Na, S. Zohar, Y. Wang, S. B. Welch, M. H. Seaberg, J. D. Koralek, G. L. Dakovski, W. Hettel, M.-F. Lin, S. P. Moeller, W. F. Schlotter, A. H. Reid, M. P. Minitti, T. Boyle, F. He, R. Sutarto, R. Liang, D. Bonn, W. Har...
2022
-
[10]
X. Li, T. Qiu, J. Zhang, E. Baldini, J. Lu, A. M. Rappe, and K. A. Nelson, Science364, 1079 (2019)
2019
-
[11]
Kogar, A
A. Kogar, A. Zong, P. E. Dolgirev, X. Shen, J. Straqua- dine, Y.-Q. Bie, X. Wang, T. Rohwer, I.-C. Tung, Y. Yang, R. Li, J. Yang, S. Weathersby, S. Park, M. E. Kozina, E. J. Sie, H. Wen, P. Jarillo-Herrero, I. R. Fisher, X. Wang, and N. Gedik, Nat. Phys.16, 159 (2020)
2020
-
[12]
Buzzi, D
M. Buzzi, D. Nicoletti, S. Fava, G. Jotzu, K. Miyagawa, K. Kanoda, A. Henderson, T. Siegrist, J. Schlueter, M.- S. Nam, A. Ardavan, and A. Cavalleri, Phys. Rev. Lett. 127, 197002 (2021)
2021
-
[13]
Fausti, R
D. Fausti, R. I. Tobey, N. Dean, S. Kaiser, A. Dienst, M. C. Hoffmann, S. Pyon, T. Takayama, H. Takagi, and A. Cavalleri, Science331, 189 (2011)
2011
-
[14]
Mitrano, A
M. Mitrano, A. Cantaluppi, D. Nicoletti, S. Kaiser, A. Perucchi, S. Lupi, P. Di Pietro, D. Pontiroli, M. Ricc` o, S. R. Clark, D. Jaksch, and A. Cavalleri, Na- ture530, 461 (2016)
2016
-
[15]
J. W. McIver, B. Schulte, F.-U. Stein, T. Matsuyama, G. Jotzu, G. Meier, and A. Cavalleri, Nat. Phys.16, 38 (2020)
2020
-
[16]
E. Rowe, B. Yuan, M. Buzzi, G. Jotzu, Y. Zhu, M. Fech- ner, M. F¨ orst, B. Liu, D. Pontiroli, M. Ricc` o, and A. Cavalleri, Nat. Phys.19, 1821 (2023)
2023
-
[17]
Y. H. Wang, H. Steinberg, P. Jarillo-Herrero, and N. Gedik, Science342, 453 (2013)
2013
-
[18]
Kitagawa, T
T. Kitagawa, T. Oka, A. Brataas, L. Fu, and E. Demler, Physical Review B84, 235108 (2011)
2011
-
[19]
Oka and H
T. Oka and H. Aoki, Physical Review B79, 081406 (2009)
2009
-
[20]
N. H. Lindner, G. Refael, and V. Galitski, Nature Phys 7, 490 (2011)
2011
-
[21]
G. Usaj, P. M. Perez-Piskunow, L. E. F. Foa Torres, and C. A. Balseiro, Physical Review B90, 115423 (2014)
2014
-
[22]
M. S. Rudner, N. H. Lindner, E. Berg, and M. Levin, Phys. Rev. X3, 031005 (2013)
2013
-
[23]
P. M. Perez-Piskunow, G. Usaj, C. A. Balseiro, and L. E. F. F. Torres, Phys. Rev. B89, 121401 (2014)
2014
-
[24]
M. S. Rudner and N. H. Lindner, Nat Rev Phys2, 229 (2020)
2020
-
[25]
P. M. Perez-Piskunow, L. E. F. Foa Torres, and G. Usaj, Phys. Rev. A91, 043625 (2015)
2015
-
[26]
Sub-picosecond ultrafast transport was finally used to provide evidence for the light-induced anomalous Hall effect [15]
platforms, the experimental verification in quantum materials is much more challenging due to issues of heat- ing, dissipation, and the lack of straightforward prob- ing techniques [27]. Sub-picosecond ultrafast transport was finally used to provide evidence for the light-indu...
2026 arXiv
-
[27]
Oka and S
T. Oka and S. Kitamura, Annual Review of Condensed Matter Physics10, 387 (2019)
2019
-
[28]
M. C. Rechtsman, J. M. Zeuner, Y. Plotnik, Y. Lumer, D. Podolsky, F. Dreisow, S. Nolte, M. Segev, and A. Sza- meit, Nature496, 196 (2013)
2013
-
[29]
Jotzu, M
G. Jotzu, M. Messer, R. Desbuquois, M. Lebrat, T. Uehlinger, D. Greif, and T. Esslinger, Nature515, 237 (2014)
2014
-
[30]
Aeschlimann, S
S. Aeschlimann, S. A. Sato, R. Krause, M. Ch´ avez- Cervantes, U. De Giovannini, H. H¨ ubener, S. Forti, C. Coletti, K. Hanff, K. Rossnagel, A. Rubio, and I. Gierz, Nano Lett.21, 5028 (2021)
2021
-
[31]
S. A. Sato, J. W. McIver, M. Nuske, P. Tang, G. Jotzu, B. Schulte, H. H¨ ubener, U. De Giovannini, L. Mathey, M. A. Sentef, A. Cavalleri, and A. Rubio, Physical Re- view B99, 214302 (2019)
2019
-
[32]
Nuske, L
M. Nuske, L. Broers, B. Schulte, G. Jotzu, S. A. Sato, A. Cavalleri, A. Rubio, J. W. McIver, and L. Mathey, Phys. Rev. Research2, 043408 (2020)
2020
-
[33]
Boschini, M
F. Boschini, M. Zonno, and A. Damascelli, Rev. Mod. Phys.96, 015003 (2024)
2024
-
[34]
Saathoff, L
G. Saathoff, L. Miaja-Avila, M. Aeschlimann, M. M. Murnane, and H. C. Kapteyn, Physical Review A77, 022903 (2008)
2008
-
[35]
Merboldt, M
M. Merboldt, M. Sch¨ uler, D. Schmitt, J. P. Bange, W. Bennecke, K. Gadge, K. Pierz, H. W. Schumacher, D. Momeni, D. Steil, S. R. Manmana, M. A. Sentef, M. Reutzel, and S. Mathias, Nat. Phys.21, 1093 (2025)
2025
-
[36]
D. Choi, M. Mogi, U. De Giovannini, D. Azoury, B. Lv, Y. Su, H. H¨ ubener, A. Rubio, and N. Gedik, Nat. Phys. 21, 1100 (2025)
2025
-
[37]
Y. Chen, Y. Wang, M. Claassen, B. Moritz, and T. P. Devereaux, npj Quantum Mater.5, 84 (2020)
2020
-
[38]
J.-H. Chen, C. Jang, S. Adam, M. S. Fuhrer, E. D. Williams, and M. Ishigami, Nature Phys4, 377 (2008)
2008
-
[39]
Zhang, V
Y. Zhang, V. W. Brar, C. Girit, A. Zettl, and M. F. Crommie, Nature Phys5, 722 (2009)
2009
-
[40]
Deshpande, W
A. Deshpande, W. Bao, F. Miao, C. N. Lau, and B. J. LeRoy, Phys. Rev. B79, 205411 (2009)
2009
-
[41]
M. L. Teague, A. P. Lai, J. Velasco, C. R. Hughes, A. D. Beyer, M. W. Bockrath, C. N. Lau, and N.-C. Yeh, Nano Lett.9, 2542 (2009)
2009
-
[42]
Choi, S.-H
S.-M. Choi, S.-H. Jhi, and Y.-W. Son, Phys. Rev. B81, 081407 (2010)
2010
-
[43]
Brihuega, P
I. Brihuega, P. Mallet, C. Bena, S. Bose, C. Michaelis, L. Vitali, F. Varchon, L. Magaud, K. Kern, and J. Y. Veuillen, Phys. Rev. Lett.101, 206802 (2008)
2008
-
[44]
E. Wang, X. Lu, S. Ding, W. Yao, M. Yan, G. Wan, K. Deng, S. Wang, G. Chen, L. Ma, J. Jung, A. V. Fedorov, Y. Zhang, G. Zhang, and S. Zhou, Nature Phys 12, 1111 (2016)
2016
-
[45]
S. Y. Zhou, G.-H. Gweon, A. V. Fedorov, P. N. First, W. A. de Heer, D.-H. Lee, F. Guinea, A. H. Castro Neto, and A. Lanzara, Nature Mater6, 770 (2007)
2007
-
[46]
Bielinski, R
N. Bielinski, R. Chari, J. May-Mann, S. Kim, J. Zwet- tler, Y. Deng, A. Aishwarya, S. Roychowdhury, C. Shekhar, M. Hashimoto, D. Lu, J. Yan, C. Felser, V. Madhavan, Z.-X. Shen, T. L. Hughes, and F. Mah- mood, Nat. Phys.21, 458 (2025)
2025
-
[47]
Berthod,Spectroscopic Probes of Quantum Matter (IOP Publishing, 2018)
C. Berthod,Spectroscopic Probes of Quantum Matter (IOP Publishing, 2018)
2018
-
[48]
D. A. Lovey, G. Usaj, L. E. F. Foa Torres, and C. A. Balseiro, Phys. Rev. B93, 245434 (2016)
2016
-
[49]
T. L. Cocker, V. Jelic, R. Hillenbrand, and F. A. Heg- mann, Nat. Photon.15, 558 (2021)
2021
-
[50]
M¨ uller, Progress in Surface Science , 100727 (2023)
M. M¨ uller, Progress in Surface Science , 100727 (2023)
2023
-
[51]
T. L. Cocker, V. Jelic, M. Gupta, S. J. Molesky, J. A. J. Burgess, G. D. L. Reyes, L. V. Titova, Y. Y. Tsui, M. R. Freeman, and F. A. Hegmann, Nature Photonics7, 620 (2013)
2013
-
[52]
T. L. Cocker, D. Peller, P. Yu, J. Repp, and R. Huber, Nature539, 263 (2016). 17
2016
-
[53]
Yoshioka, I
K. Yoshioka, I. Katayama, Y. Minami, M. Kitajima, S. Yoshida, H. Shigekawa, and J. Takeda, Nature Pho- ton10, 762 (2016)
2016
-
[54]
Peller, L
D. Peller, L. Z. Kastner, T. Buchner, C. Roelcke, F. Al- brecht, N. Moll, R. Huber, and J. Repp, Nature585, 58 (2020)
2020
-
[55]
L. Wang, Y. Xia, and W. Ho, Science376, 401 (2022)
2022
-
[56]
Sheng, A.-C
S. Sheng, A.-C. Oeter, M. Abdo, K. Lichtenberg, M. Hentschel, and S. Loth, Phys. Rev. Lett.129, 043001 (2022)
2022
-
[57]
Roelcke, L
C. Roelcke, L. Z. Kastner, M. Graml, A. Biereder, J. Wilhelm, J. Repp, R. Huber, and Y. A. Gerasimenko, Nature Photonics 10.1038/s41566-024-01390-6 (2024)
2024 doi
-
[58]
V. N. Rai, J. Sim, F. Faaber, N. Bogdanoff, S. Trishin, P. Wiechers, T. S. Seifert, T. Kampfrath, C. Lotze, and K. J. Franke, Science Advances11, eadz6549 (2025)
2025
-
[59]
L. E. P. L´ opez, A. Vaitsi, V. Sleziona, F. Schulz, M. Wolf, and M. M¨ uller, Atomic-scale ultrafast dynam- ics of local charge order in a THz-induced metastable state of 1T-TaS2 (2025), arXiv:2505.20541 [cond-mat]
2025 arXiv
-
[60]
Sheng, M
S. Sheng, M. Abdo, S. Rolf-Pissarczyk, K. Lichtenberg, S. Baumann, J. A. J. Burgess, L. Malavolti, and S. Loth, Nat. Phys.20, 1603 (2024)
2024
-
[61]
Jelic, K
V. Jelic, K. Iwaszczuk, P. H. Nguyen, C. Rathje, G. J. Hornig, H. M. Sharum, J. R. Hoffman, M. R. Freeman, and F. A. Hegmann, Nature Phys13, 591 (2017)
2017
-
[62]
Yoshida, H
S. Yoshida, H. Hirori, T. Tachizaki, K. Yoshioka, Y. Arashida, Z.-H. Wang, Y. Sanari, O. Takeuchi, Y. Kanemitsu, and H. Shigekawa, ACS Photonics6, 1356 (2019)
2019
-
[63]
Yoshida, Y
S. Yoshida, Y. Arashida, H. Hirori, T. Tachizaki, A. Taninaka, H. Ueno, O. Takeuchi, and H. Shigekawa, ACS Photonics8, 315 (2021)
2021
-
[64]
Kimura, R
K. Kimura, R. Tamaki, M. Lee, X. Ouyang, S. Kus- aba, R. B. Jaculbia, Y. Kawada, J. Jung, A. Muranaka, H. Imada, I. Katayama, J. Takeda, and Y. Kim, Science 387, 1077 (2025)
2025
-
[65]
Jelic, S
V. Jelic, S. Adams, D. Maldonado-Lopez, I. A. Bu- liyaminu, M. Hassan, J. L. Mendoza-Cortes, and T. L. Cocker, Nat. Photon.19, 1048 (2025)
2025
-
[66]
S. E. Ammerman, V. Jelic, Y. Wei, V. N. Breslin, M. Hassan, N. Everett, S. Lee, Q. Sun, C. A. Pignedoli, P. Ruffieux, R. Fasel, and T. L. Cocker, Nat Commun 12, 6794 (2021)
2021
-
[67]
N. S. Wingreen, A.-P. Jauho, and Y. Meir, Physical Re- view B48, 8487 (1993)
1993
-
[68]
Avraham, J
N. Avraham, J. Reiner, A. Kumar-Nayak, N. Morali, R. Batabyal, B. Yan, and H. Beidenkopf, Advanced Ma- terials30, 1707628 (2018)
2018
-
[69]
J.-X. Yin, S. H. Pan, and M. Zahid Hasan, Nat Rev Phys3, 249 (2021)
2021
-
[70]
Mallet, I
P. Mallet, I. Brihuega, S. Bose, M. M. Ugeda, J. M. G´ omez-Rodr ´ ıguez, K. Kern, and J. Y. Veuillen, Physical Review B86, 045444 (2012)
2012
-
[71]
S. E. Ammerman, Y. Wei, N. Everett, V. Jelic, and T. L. Cocker, Physical Review B105, 115427 (2022)
2022
-
[72]
Gianluca Stefanucci, Robert van Leeuwen,Nonequilib- rium Many-Body Theory of Quantum Systems(Cam- bridge University Press, 2013)
2013
-
[73]
D. E. Liu, A. Levchenko, and R. M. Lutchyn, Physical Review B95, 115303 (2017)
2017
-
[74]
Y. Kwok, G. Chen, and S. Mukamel, Nano Letters19, 7006 (2019)
2019
-
[75]
Tuovinen, Y
R. Tuovinen, Y. Pavlyukh, E. Perfetto, and G. Ste- fanucci, Physical Review Letters130, 246301 (2023)
2023
-
[76]
H. Aoki, N. Tsuji, M. Eckstein, M. Kollar, T. Oka, and P. Werner, Reviews of Modern Physics86, 779 (2014)
2014
-
[77]
Dehghani, T
H. Dehghani, T. Oka, and A. Mitra, Phys. Rev. B90, 195429 (2014)
2014
-
[78]
K. I. Seetharam, C.-E. Bardyn, N. H. Lindner, M. S. Rudner, and G. Refael, Phys. Rev. X5, 041050 (2015)
2015
-
[79]
I. Esin, M. S. Rudner, G. Refael, and N. H. Lindner, Phys. Rev. B97, 245401 (2018)
2018
-
[80]
K. I. Seetharam, C.-E. Bardyn, N. H. Lindner, M. S. Rudner, and G. Refael, Phys. Rev. B99, 014307 (2019)
2019
-
[81]
S. Park, W. Lee, S. Jang, Y.-B. Choi, J. Park, W. Jung, K. Watanabe, T. Taniguchi, G. Y. Cho, and G.-H. Lee, Nature603, 421 (2022)
2022
-
[82]
Mori, Annu
T. Mori, Annu. Rev. Condens. Matter Phys.14, 35 (2023)
2023
-
[83]
Y. Liu, C. Yang, G. Gaertner, J. Huckabee, A. V. Suslov, G. Refael, F. Nathan, C. Lewandowski, L. E. F. Foa Torres, I. Esin, P. Barbara, and N. G. Kalugin, Nat Commun16, 2057 (2025)
-
[84]
Sch¨ uler and S
M. Sch¨ uler and S. Beaulieu, Communications Physics5, 1 (2022)
2022
-
[85]
McCann and M
E. McCann and M. Koshino, Reports on Progress in Physics76, 056503 (2013)
2013
-
[86]
F. D. M. Haldane, Phys. Rev. Lett.61, 2015 (1988)
2015
-
[87]
M. Z. Hasan and C. L. Kane, Reviews of Modern Physics 82, 3045 (2010)
2010
-
[88]
M. A. Sentef, M. Claassen, A. F. Kemper, B. Moritz, T. Oka, J. K. Freericks, and T. P. Devereaux, Nature Communications6, 7047 (2015)
2015
-
[89]
St¨ uhler, A
R. St¨ uhler, A. Kowalewski, F. Reis, D. Jungblut, F. Dominguez, B. Scharf, G. Li, J. Sch¨ afer, E. M. Han- kiewicz, and R. Claessen, Nat Commun13, 3480 (2022)
2022
-
[90]
Uchoa, V
B. Uchoa, V. N. Kotov, N. M. R. Peres, and A. H. Cas- tro Neto, Phys. Rev. Lett.101, 026805 (2008)
2008
-
[91]
Decker, J
R. Decker, J. Brede, N. Atodiresei, V. Caciuc, S. Bl¨ ugel, and R. Wiesendanger, Phys. Rev. B87, 041403 (2013)
2013
-
[92]
R. R. Nair, I.-L. Tsai, M. Sepioni, O. Lehtinen, J. Keinonen, A. V. Krasheninnikov, A. H. Castro Neto, M. I. Katsnelson, A. K. Geim, and I. V. Grigorieva, Nat Commun4, 2010 (2013)
2010
-
[93]
M. A. H. Vozmediano, M. I. Katsnelson, and F. Guinea, Physics Reports496, 109 (2010)
2010
-
[94]
de Juan, A
F. de Juan, A. Cortijo, M. A. H. Vozmediano, and A. Cano, Nature Phys7, 810 (2011)
2011
-
[95]
Nandkishore and L
R. Nandkishore and L. Levitov, Phys. Rev. B82, 115124 (2010)
2010
-
[96]
Aharonov and D
Y. Aharonov and D. Bohm, Phys. Rev.115, 485 (1959)
1959
-
[97]
P. K. Tien and J. P. Gordon, Physical Review129, 647 (1963)
1963
-
[98]
Grifoni and P
M. Grifoni and P. H¨ anggi, Physics Reports304, 229 (1998)
1998
-
[99]
Walther, G
M. Walther, G. S. Chambers, Z. Liu, M. R. Freeman, and F. A. Hegmann, J. Opt. Soc. Am. B, JOSAB22, 2357 (2005)
2005
-
[100]
M¨ uller, N
M. M¨ uller, N. Mart ´ ın Saban´ es, T. Kampfrath, and M. Wolf, ACS Photonics7, 2046 (2020)
-
[101]
Peller, C
D. Peller, C. Roelcke, L. Z. Kastner, T. Buchner, A. Neef, J. Hayes, F. Bonaf´ e, D. Sidler, M. Ruggen- thaler, A. Rubio, R. Huber, and J. Repp, Nat. Photonics 15, 143 (2021)
2021
-
[102]
Schlawin, D
F. Schlawin, D. M. Kennes, and M. A. Sentef, Appl. Phys. Rev.9, 011312 (2022)
2022
-
[103]
M. A. Sentef, J. Li, F. K¨ unzel, and M. Eckstein, Phys. 18 Rev. Res.2, 033033 (2020)
2020
-
[104]
C. J. Eckhardt, G. Passetti, M. Othman, C. Karrasch, F. Cavaliere, M. A. Sentef, and D. M. Kennes, Commun Phys5, 122 (2022)
2022
-
[105]
Hu, R.-X
J. Hu, R.-X. Xu, and Y. Yan, The Journal of Chemical Physics133, 101106 (2010)
2010
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