REVIEW 2 major objections 6 minor 1 cited by
Programmable spatiotemporal OAM optical toroidal beams with completely tunable properties
T0 review · 2 major / 6 minor · reviewed 2026-08-06 · deepseek-v4-flash
Pith's one-line read A programmable platform generates 3D toroidal light beams with independently tunable duration, geometry, and OAM charge after propagation through a multimode fiber.
desk verdict Independent tuning of duration, aspect ratio, and OAM is real, but the fidelity metric is self-referential and the ideal-target overlap is never reported. 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 mechanism is a spectral pulse shaper paired with a multi-plane light converter that generates, for each of 293 wavelength channels, any amplitude-and-phase superposition of 45 orthogonal Hermite-Gaussian modes per polarization, coupled into a 90-mode graded-index multimode fiber. A spectrally resolved linear transmission matrix of the fiber is measured once; the conjugate transpose of this matrix converts a desired output toroidal beam—defined as a sequence of two-dimensional temporal cross-sections carrying either poloidal or toroidal phase wraps—into the input field that produces it at the fiber output. The same transmission matrix is then used numerically to propagate the targeted beam for comparison, and the magnitude-squared overlap between measured and simulated fields serves as the fidelity metric.
What would settle it
Measure the output field of one of the extreme configurations (for example, aspect ratio 1.54 or $|l|=13$) and decompose it in a mode basis larger than the 45-mode Hermite-Gaussian set used in the paper; if a substantial fraction of the power lies outside the 45-mode subspace, or if an independently defined analytic toroidal beam produces a markedly lower overlap than the reported metric, the claim of complete configurability would be weakened. Alternatively, re-measure the transmission matrix after the experiment and check whether the same input still produces the same output.
Extended reading notes
Core claim
On the paper's own terms, the central discovery is that complete configurability of spatiotemporal OAM toroidal beams is achievable after propagation through a multimode fiber supporting 90 spatial/polarization modes, using the system's 25,000 spatiotemporal and polarization degrees of freedom. Each beam is synthesized as a superposition of 45 Hermite-Gaussian modes per polarization per spectral channel, and the required input field is computed from the conjugate transpose of the experimentally measured spectrally resolved transmission matrix. This enables independent adjustment of temporal duration, the ratio of major to minor torus radius, and the OAM charge imparted by either poloidal or toroidal phase wraps. The authors report amplitude-phase-polarization overlaps between experimental and simulated beams of 55–86% across the tested parameter ranges.
Load-bearing premise
The reported fidelity assumes that the experimentally measured transmission matrix, used both to compute the input fields and to generate the 'Simulated' reference beam for comparison, is accurate and stable, and that the 45-mode Hermite-Gaussian basis is sufficient to represent the target toroidal beams.
Editorial extensions
If this is right
- Toroidal beams can be reprogrammed on demand through the spatial light modulator, with no physical reconfiguration of the apparatus.
- Independent control of duration, aspect ratio, OAM, and polarization enables beam tailoring for high-dimensional quantum entanglement, optical manipulation, and sensing.
- Because the beams are delivered through a multimode fiber, they can reach previously inaccessible regions, such as the interior of scattering biological tissue.
- The same platform could generate time-varying OAM beams on the picosecond timescale, extending demonstrations currently limited to microwaves, extreme ultraviolet, and femtosecond near-infrared light.
Reading between the lines
- The quality metric is self-referential: the 'Simulated' comparison beam is produced by propagating the target through the same measured transmission matrix that shaped the experimental beam, so the reported overlaps characterize reproducibility of the fiber system rather than absolute fidelity to an ideal toroidal beam.
- Because the toroidal OAM limit of $|l|=8$ is set by the 45-mode Hermite-Gaussian basis, increasing the basis size should directly extend the achievable toroidal charge, making the platform's range a function of mode count rather than a fundamental physics limit.
- Independent tunability across duration, geometry, and OAM could let experiments isolate how each property individually affects light-matter interactions such as trapping or ionization, something that is difficult when the properties are coupled.
- A dynamic re-measurement of the transmission matrix would extend the same architecture to adapting to changing or moving scattering media, potentially enabling real-time re-routing of toroidal beams.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript reports an experimental platform for generating polarization-resolved spatiotemporal optical toroidal beams after propagation through a multimode fiber. The system combines a swept laser, a spectral pulse shaper, an SLM, and an MPLC to address 45 Hermite-Gaussian modes per polarization, and uses the measured transmission matrix to compute the input fields that produce the desired output beams. The authors demonstrate toroidal beams with temporal durations from 2.3 to 6.8 ps, toroidal aspect ratios from 1.5 to 2.7, poloidal OAM charges up to ±13, and toroidal OAM charges up to ±8. Fidelity is quantified by the overlap between the measured field and a simulated field obtained by propagating the target through the measured transmission matrix; reported overlaps range from 55% to 86%. The paper claims complete configurability and independent control of all physical and geometric properties of these beams.
Significance. If the central claims hold, this would be a valuable addition to the structured-light toolbox. The experimental system is a substantial engineering effort, and the range of demonstrated parameters — especially the combination of temporal shaping, polarization-resolved OAM, and delivery through an MMF — goes beyond prior toroidal-beam demonstrations. The use of the measured transmission matrix for both beam computation and validation is a coherent approach that ensures the reported fields are consistent with the system's calibration. However, the current fidelity metric does not directly support the 'high fidelity' and 'complete configurability' claims, since it compares the measurement to the system's own best possible output rather than to an ideal toroidal beam. The paper therefore needs a modest additional analysis to substantiate its headline claims, but the underlying experimental capability appears sound.
major comments (2)
- [§2.1, Figs. 2–5] The quality metric |O|² is defined in §2.1 as the overlap between the measured field and a 'Simulated' field that is constructed by expressing the target toroid as a superposition of 45 Hermite-Gaussian modes and propagating it through the experimentally measured transmission matrix. The text explicitly states that this simulation 'provides the best possible toroidal beam the experimental system can achieve.' Consequently, the reported overlaps (55–86%) measure how closely the system reproduces its own calibrated output, not how close either field is to the ideal toroidal beam with the specified duration, aspect ratio, and OAM charge. The manuscript never reports the overlap between the simulated field and the ideal target. This matters because if the transmission matrix has systematic errors or the 45-mode basis truncates the target, the simulated field itself deviates from the ideal, and the reported overlaps could overstate the fidelity to the intended beam. I request an analysis that quantifies the simulated-to-ideal overlap for the configurations in Figs. 2–5 — for example, by comparing the simulated field to an analytic representation of the target toroid or to a higher-resolution numerical reference — and a presentation of the resulting end-to-end fidelity (e.g., as the product of measured-vs-simulated and simulated-vs-ideal overlaps). This is essential to support the abstract's 'high fidelity control' claim.
- [Abstract and §3 (Discussion)] The abstract claims 'complete configurability of programmable, polarization-resolved OAM toroidal beams' and 'independent control of all physical and geometric properties,' and §3 states the system enables 'the ability to rapidly and independently fully configure beam duration, geometric structure and OAM charge.' The experimental demonstrations in Figs. 2–5, however, vary only one parameter at a time while holding the other two at fixed nominal values, and no data are presented showing simultaneous tuning of all three parameters or a quantitative cross-talk analysis (e.g., whether changing OAM charge preserves the measured duration and aspect ratio). The one-parameter sweeps are useful evidence, but they do not by themselves establish the independence and completeness claims. I request at least one demonstration of simultaneous variation of duration, aspect ratio, and OAM charge, together with a discussion of any inter-parameter constraints or trade-offs revealed by the measurements.
minor comments (6)
- [Fig. 1 caption] The caption contains a typo: 'respecitvely' should be 'respectively'.
- [Fig. 4 caption] The phrase 'have a minor and an aspect ratio of 2' is incomplete; presumably 'a minor radius' is intended, but please clarify whether the major radius or minor radius is meant.
- [§2.2] The text states the system supports aspect ratios 'ranging from 1.54−2.74' while Fig. 3 and the surrounding text give the maximum as 2.70; please correct the inconsistency.
- [Abstract] The claimed '25,000 spatiotemporal and polarization degrees of freedom' is not derived in the text; with Nλ=293 and 90 modes per wavelength, the product is 26,370, so please clarify the counting or adjust the number.
- [§2.3] The manuscript says the 45-mode Hermite-Gaussian basis 'cannot generate a topological charge |l|>9 on the toroidal axis,' but the demonstrated maximum toroidal OAM is |l|=8; please explain why the practical limit is 8 rather than 9.
- [Methods §4.1] The statement that the conjugate transpose of the transmission matrix 'allows us to calculate the required input field' is exact only for a unitary transmission matrix; please comment on the unitarity of the measured TM and the effect of modal losses.
Circularity Check
Fidelity metric compares measured beams to simulations built from the same measured transmission matrix, so reported overlaps measure calibration self-consistency rather than agreement with the ideal toroid.
-
self definitional
[Section 2.1 and Methods 4.1]
"SECTION 2.1: 'For each configuration, these simulated beams were generated by first constructing the targeted toroidal beam as a superposition of 45 Hermite-Gaussian modes, and then numerically propagating it using the experimentally measured TM [18]. Therefore, this provides the best possible toroidal beam the experimental system can achieve.' SECTION 4.1: 'Therefore, utilizing the conjugate transpose of this TM [46] allows us to calculate the required input field into the MMF which generates the desired toroidal beams at the output of the MMF.'"
The benchmark field ('Simulated') is obtained by propagating the designed target through the experimentally measured TM. The measured output field is generated by sending the target multiplied by the conjugate transpose of that same TM through the fiber, so it is approximately TM * TM-dagger * target. The reported overlap |O|^2 therefore compares TM * target with TM * TM-dagger * target: both sides are constructed from the same calibration. The metric thus measures how close the TM is to unitary and how stable the system is during the measurement, not how closely either field matches the ideal toroidal beam with the stated duration, aspect ratio, and OAM charge.
full rationale
This is an experimental demonstration rather than a derivation, so most classic circularity patterns are absent. The self-citations (refs 18 and 19) supply established TM/holography methods and are not used to forbid alternatives. The only load-bearing circular element is the fidelity metric: because the 'Simulated' reference is defined from the same measured TM used to synthesize the beam, the overlap is a self-consistency test. This does not invalidate the demonstrated programmability or the transmission-matrix method, but it means the absolute claim of 'high fidelity' with respect to ideal toroids is not established by the reported numbers. Reporting the simulated-to-ideal overlap, or an independent field measurement, would remove this gap. Score 6 reflects that the central quantitative evidence partially reduces by construction, while much of the paper's contribution (tuning ranges, OAM limits, polarization control) remains independent empirical content.
Assumptions & free parameters
assumptions (3)
- domain assumption The 45 Hermite-Gaussian modes per polarization form a sufficient basis to represent the targeted toroidal beams.
- domain assumption The measured transmission matrix remains accurate and stable during the experiments.
- domain assumption The spectral pulse shaper provides independent and calibrated control of 293 spectral channels with 15 GHz resolution.
Cite this review
Pith. "Pith review of Programmable spatiotemporal OAM optical toroidal beams with completely tunable properties." pith.science (2026). https://pith.science/paper/XMKS4WGT
@misc{pith2026250620365,
author = {Pith},
title = {Pith review of: Programmable spatiotemporal OAM optical toroidal beams with completely tunable properties},
year = {2026},
howpublished = {\url{https://pith.science/paper/XMKS4WGT}},
note = {Machine review of arXiv:2506.20365}
}
abstract
Spatiotemporal toroidal orbital angular momentum (OAM) beams are a developing class of spatiotemporal beams which have key applications within quantum physics, metrology, imaging and optical manipulation. However, the full realization of these applications require complete configurability within tunable temporal duration, 3D geometric structure and OAM charge of these beams along with amplitude, phase and polarization control. In this paper, we demonstrate complete configurability of programmable, polarization-resolved OAM toroidal beams after propagation through a multimode optical fiber (MMF) supporting 90 spatial/polarization modes. We show high fidelity control: temporally with beams spanning 2.3 ps - 6.8 ps, geometrically with toroidal aspect ratios spanning 1.5-2.7 and with up to $|l|=13$ OAM topological charge. In total this system supports 25,000 spatiotemporal and polarization degrees of freedom which enables the independent control of all physical and geometric properties of these 3D toroidal beams. By utilizing an MMF, this system also enables toroidal beam delivery to previously inaccessible regions, paving the way for applications including optical manipulations, sensing and imaging through complex photonics media such as scattering biological tissues.
Forward citations
Cited by 1 Pith paper
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Reference graph
Works this paper leans on
-
[1]
Journal of Optics25(9), 093001 (2023) https://doi.org/10.1088/2040-8986/ace4dc
Shen, Y., Zhan, Q., Wright, L.G., Christodoulides, D.N., Wise, F.W., Willner, A.E., Zou, K.-h., Zhao, Z., Porras, M.A., Chong, A., Wan, C., Bliokh, K.Y., Liao, C.-T., Hern´ andez-Garc ´ ıa, C., Murnane, M., Yessenov, M., Abouraddy, A.F., Wong, L.J., Go, M., Kumar, S., Guo, C., Fan, S., Papasimakis, N., Zheludev, N.I., Chen, L., Zhu, W., Agrawal, A., Mouna...
2023
-
[2]
Photonics Research 4(5), 14 (2016) https://doi.org/10.1364/PRJ.4.000B14
Wang, J.: Advances in communications using optical vortices. Photonics Research 4(5), 14 (2016) https://doi.org/10.1364/PRJ.4.000B14
-
[3]
Jolly, S.W., Dechanxhe, J., Kockaert, P.: Propagation of space-time optical vor- tices in multimode fibers. arXiv (2025). https://doi.org/10.48550/ARXIV.2504. 01643
-
[4]
Physical Review Letters112(21), 215001 (2014) https: //doi.org/10.1103/PhysRevLett.112.215001
Vieira, J., Mendonca, J.T.: Nonlinear Laser Driven Donut Wakefields for Positron and Electron Acceleration. Physical Review Letters112(21), 215001 (2014) https: //doi.org/10.1103/PhysRevLett.112.215001
-
[5]
Light: Science & Applications14(1), 4 (2025) https://doi.org/10.1038/s41377-024-01665-1
Cheng, M., Jiang, W., Guo, L., Li, J., Forbes, A.: Metrology with a twist: probing and sensing with vortex light. Light: Science & Applications14(1), 4 (2025) https://doi.org/10.1038/s41377-024-01665-1
-
[6]
eLight3(1), 11 (2023) https://doi.org/10.1186/s43593-023-00042-6 13
Wan, C., Chong, A., Zhan, Q.: Optical spatiotemporal vortices. eLight3(1), 11 (2023) https://doi.org/10.1186/s43593-023-00042-6 13
-
[7]
Advances in Optics and Photonics16(2), 163 (2024) https://doi.org/10.1364/AOP.507558
Zhan, Q.: Spatiotemporal sculpturing of light: a tutorial. Advances in Optics and Photonics16(2), 163 (2024) https://doi.org/10.1364/AOP.507558
-
[8]
Physical Review A45(11), 8185–8189 (1992) https://doi.org/10.1103/PhysRevA
Allen, L., Beijersbergen, M.W., Spreeuw, R.J.C., Woerdman, J.P.: Orbital angu- lar momentum of light and the transformation of laguerre-gaussian laser modes. Physical Review A45(11), 8185–8189 (1992) https://doi.org/10.1103/PhysRevA. 45.8185
doi:10.1103/physreva 1992
Show all 46 references
-
[9]
Speirits, F.C., Barnett, S.M.: Do waves carrying orbital angular momentum possess azimuthal linear momentum? Physical Review Letters111(10), 103602 (2013) https://doi.org/10.1103/PhysRevLett.111.103602
2013 doi
-
[10]
Nature Photonics16(7), 519–522 (2022) https://doi.org/10.1038/s41566-022-01013-y
Wan, C., Cao, Q., Chen, J., Chong, A., Zhan, Q.: Toroidal vortices of light. Nature Photonics16(7), 519–522 (2022) https://doi.org/10.1038/s41566-022-01013-y
2022 doi
-
[11]
Nature Communications16(1), 2823 (2025) https://doi.org/ 10.1038/s41467-025-58154-1
Liu, S., Ge, H., Xu, X.-Y., Sun, Y., Liu, X.-P., Lu, M.-H., Chen, Y.-F.: Gen- eration of spatiotemporal acoustic vortices with arbitrarily oriented orbital angular momentum. Nature Communications16(1), 2823 (2025) https://doi.org/ 10.1038/s41467-025-58154-1
2025 doi
-
[12]
Physical Review X6(3), 031037 (2016) https://doi.org/10.1103/PhysRevX.6.031037
Jhajj, N., Larkin, I., Rosenthal, E.W., Zahedpour, S., Wahlstrand, J.K., Milch- berg, H.M.: Spatiotemporal optical vortices. Physical Review X6(3), 031037 (2016) https://doi.org/10.1103/PhysRevX.6.031037
2016 doi
-
[13]
Optica6(12), 1547 (2019) https: //doi.org/10.1364/OPTICA.6.001547
Hancock, S.W., Zahedpour, S., Goffin, A., Milchberg, H.M.: Free-space prop- agation of spatiotemporal optical vortices. Optica6(12), 1547 (2019) https: //doi.org/10.1364/OPTICA.6.001547
2019 doi
-
[14]
Nature Photonics 17(9), 822–828 (2023) https://doi.org/10.1038/s41566-023-01223-y
Piccardo, M., De Oliveira, M., Policht, V.R., Russo, M., Ardini, B., Corti, M., Valentini, G., Vieira, J., Manzoni, C., Cerullo, G., Ambrosio, A.: Broadband con- trol of topological–spectral correlations in space–time beams. Nature Photonics 17(9), 822–828 (2023) https://doi.o...
2023 doi
-
[15]
Nature Photonics 14(6), 350–354 (2020) https://doi.org/10.1038/s41566-020-0587-z
Chong, A., Wan, C., Chen, J., Zhan, Q.: Generation of spatiotemporal optical vor- tices with controllable transverse orbital angular momentum. Nature Photonics 14(6), 350–354 (2020) https://doi.org/10.1038/s41566-020-0587-z
2020 doi
-
[16]
Scientific Reports14(1), 5483 (2024) https://doi.org/10.1038/ s41598-024-54216-4
Adams, J., Agha, I., Chong, A.: Spatiotemporal optical vortex reconnections of multi-vortices. Scientific Reports14(1), 5483 (2024) https://doi.org/10.1038/ s41598-024-54216-4
2024
-
[17]
Nature Photonics16(7), 523–528 (2022) https://doi.org/10.1038/s41566-022-01028-5
Zdagkas, A., McDonnell, C., Deng, J., Shen, Y., Li, G., Ellenbogen, T., Papasi- makis, N., Zheludev, N.I.: Observation of toroidal pulses of light. Nature Photonics16(7), 523–528 (2022) https://doi.org/10.1038/s41566-022-01028-5
2022 doi
- [18]
-
[19]
Nature Communications11(1), 5813 (2020) https://doi.org/10.1038/s41467-020-19601-3
Mounaix, M., Fontaine, N.K., Neilson, D.T., Ryf, R., Chen, H., Alvarado- Zacarias, J.C., Carpenter, J.: Time reversed optical waves by arbitrary vector spatiotemporal field generation. Nature Communications11(1), 5813 (2020) https://doi.org/10.1038/s41467-020-19601-3
2020 doi
-
[20]
Nature Photonics19(5), 471–478 (2025) https://doi
Huang, J., Mao, J., Li, X., Yuan, J., Zheng, Y., Zhai, C., Dai, T., Fu, Z., Bao, J., Yang, Y., Dai, D., Li, Y., Gong, Q., Wang, J.: Integrated optical entangled quantum vortex emitters. Nature Photonics19(5), 471–478 (2025) https://doi. org/10.1038/s41566-025-01620-5
2025 doi
-
[21]
Light: Science & Applications8(1), 90 (2019) https://doi.org/10
Shen, Y., Wang, X., Xie, Z., Min, C., Fu, X., Liu, Q., Gong, M., Yuan, X.: Optical vortices 30 years on: OAM manipulation from topological charge to multiple singularities. Light: Science & Applications8(1), 90 (2019) https://doi.org/10. 1038/s41377-019-0194-2
2019
-
[22]
Nature Communications15(1), 7693 (2024) https://doi.org/10.1038/s41467-024-52070-6
Lei, S., Xia, S., Song, D., Xu, J., Buljan, H., Chen, Z.: Optical vortex ladder via Sisyphus pumping of Pseudospin. Nature Communications15(1), 7693 (2024) https://doi.org/10.1038/s41467-024-52070-6
2024 doi
-
[23]
Nature Reviews Physics2(7), 365–381 (2020) https://doi.org/10
Erhard, M., Krenn, M., Zeilinger, A.: Advances in high-dimensional quantum entanglement. Nature Reviews Physics2(7), 365–381 (2020) https://doi.org/10. 1038/s42254-020-0193-5
2020
-
[24]
Physical Review Letters95(26), 260501 (2005) https: //doi.org/10.1103/PhysRevLett.95.260501
Barreiro, J.T., Langford, N.K., Peters, N.A., Kwiat, P.G.: Generation of Hyper- entangled Photon Pairs. Physical Review Letters95(26), 260501 (2005) https: //doi.org/10.1103/PhysRevLett.95.260501
2005 doi
-
[25]
Scientific Reports15(1), 12184 (2025) https://doi.org/10.1038/ s41598-025-97002-6
Zhu, Y., Shang, J., Fan, Y.-n., Kou, Y., Qu, X., Yan, X.-a., Zhang, Y., Wang, F.: Implementation of double Feynman gate in high dimensional quan- tum systems. Scientific Reports15(1), 12184 (2025) https://doi.org/10.1038/ s41598-025-97002-6
2025
- [26]
-
[27]
Nature Communications16(1), 3994 (2025) https: //doi.org/10.1038/s41467-025-59234-y
Liu, M., Lin, P., Huo, P., Qi, H., Jin, R., Zhang, H., Ren, Y., Song, M., Lu, Y.- q., Xu, T.: Monolithic silicon carbide metasurfaces for engineering arbitrary 3D perfect vector vortex beams. Nature Communications16(1), 3994 (2025) https: //doi.org/10.1038/s41467-025-59234-y
2025 doi
-
[28]
Nature Com- munications16(1), 2467 (2025) https://doi.org/10.1038/s41467-025-57618-8 15
B´ egin, J.-L., Karimi, E., Corkum, P., Brabec, T., Bhardwaj, R.: Orbital angular momentum control of strong-field ionization in atoms and molecules. Nature Com- munications16(1), 2467 (2025) https://doi.org/10.1038/s41467-025-57618-8 15
2025 doi
-
[29]
Light: Science & Applications14(1), 184 (2025) https://doi.org/10.1038/ s41377-025-01822-0
Tan, X.-J., Huang, Z.: MINFLUX nanoscopy enhanced with high-order vortex beams. Light: Science & Applications14(1), 184 (2025) https://doi.org/10.1038/ s41377-025-01822-0
2025
-
[30]
Communications Physics8(1), 105 (2025) https://doi.org/10.1038/ s42005-025-02004-5
Chen, Z., Daly, U., Boldin, A., Lavery, M.P.J.: Weather sensing with struc- tured light. Communications Physics8(1), 105 (2025) https://doi.org/10.1038/ s42005-025-02004-5
2025
-
[31]
Scientific Reports15(1), 12999 (2025) https: //doi.org/10.1038/s41598-025-96197-y
Kudriaˇ sov, V., Kirova, T., Asadpour, S.H., Hamedi, H.R.: Azimuthally dependent absorption and gain in an atomic system with spontaneously generated coherence controlled by an optical vortex field. Scientific Reports15(1), 12999 (2025) https: //doi.org/10.1038/s41598-025-96197-y
2025 doi
-
[32]
The Journal of Physical Chemistry C117(37), 19182–19188 (2013) https://doi.org/ 10.1021/jp404372a
Chiang, W.-Y., Usman, A., Masuhara, H.: Femtosecond Pulse-Width Dependent Trapping and Directional Ejection Dynamics of Dielectric Nanoparticles. The Journal of Physical Chemistry C117(37), 19182–19188 (2013) https://doi.org/ 10.1021/jp404372a
2013 doi
-
[33]
Optics Express18(7), 7554 (2010) https://doi.org/10.1364/OE.18.007554
Shane, J.C., Mazilu, M., Lee, W.M., Dholakia, K.: Effect of pulse temporal shape on optical trapping and impulse transfer using ultrashort pulsed lasers. Optics Express18(7), 7554 (2010) https://doi.org/10.1364/OE.18.007554
2010 doi
-
[34]
Laser Physics Letters11(7), 076001 (2014) https: //doi.org/10.1088/1612-2011/11/7/076001
Kittiravechote, A., Chiang, W.-Y., Usman, A., Liau, I., Masuhara, H.: Enhanced optical confinement of dye-doped dielectric nanoparticles using a picosecond- pulsed near-infrared laser. Laser Physics Letters11(7), 076001 (2014) https: //doi.org/10.1088/1612-2011/11/7/076001
2014 doi
-
[35]
Optics Express27(11), 16206 (2019) https://doi.org/10.1364/OE.27
Lazarev, G., Chen, P.-J., Strauss, J., Fontaine, N., Forbes, A.: Beyond the display: phase-only liquid crystal on Silicon devices and their applications in photonics [Invited]. Optics Express27(11), 16206 (2019) https://doi.org/10.1364/OE.27. 016206
2019 doi
-
[36]
Optics Express27(5), 6459 (2019) https://doi.org/10
Vijayakumar, A., Rosales-Guzm´ an, C., Rai, M.R., Rosen, J., Minin, O.V., Minin, I.V., Forbes, A.: Generation of structured light by multilevel orbital angular momentum holograms. Optics Express27(5), 6459 (2019) https://doi.org/10. 1364/OE.27.006459
2019
-
[37]
Journal of Photochemistry and Photobiology A: Chemistry234, 83–90 (2012) https://doi.org/10.1016/j.jphotochem.2011.11.015
Usman, A., Chiang, W.-Y., Masuhara, H.: Optical trapping and polarization- controlled scattering of dielectric spherical nanoparticles by femtosecond laser pulses. Journal of Photochemistry and Photobiology A: Chemistry234, 83–90 (2012) https://doi.org/10.1016/j.jphotochem.2011.11.015
2012 doi
-
[38]
Advanced Photonics5(03) (2023) https://doi.org/10.1117/1.AP.5
Zhang, J., Li, P., Cheung, R.C.C., Wong, A.M.H., Li, J.: Generation of time-varying orbital angular momentum beams with space-time-coding digital metasurface. Advanced Photonics5(03) (2023) https://doi.org/10.1117/1.AP.5. 3.036001 16
2023 doi
-
[39]
Science364(6447), 9486 (2019) https://doi.org/10.1126/science.aaw9486
Rego, L., Dorney, K.M., Brooks, N.J., Nguyen, Q.L., Liao, C.-T., San Rom´ an, J., Couch, D.E., Liu, A., Pisanty, E., Lewenstein, M., Plaja, L., Kapteyn, H.C., Murnane, M.M., Hern´ andez-Garc ´ ıa, C.: Generation of extreme-ultraviolet beams with time-varying orbital angular mo...
2019 doi
-
[40]
Science Advances11(2), 6678 (2025) https://doi.org/10.1126/sciadv.adr6678
De Oliveira, M., Ambrosio, A.: Subcycle modulation of light’s orbital angular momentum via a Fourier space-time transformation. Science Advances11(2), 6678 (2025) https://doi.org/10.1126/sciadv.adr6678
2025 doi
-
[41]
Bell Labs Technical Journal11(2), 105–128 (2006) https://doi.org/10.1002/bltj.20164
Neilson, D.T., Doerr, C.R., Marom, D.M., Ryf, R., Earnshaw, M.P.: Wave- length selective switching for optical bandwidth management. Bell Labs Technical Journal11(2), 105–128 (2006) https://doi.org/10.1002/bltj.20164
2006 doi
-
[42]
Nature Communications10(1), 1865 (2019) https://doi.org/10.1038/s41467-019-09840-4
Fontaine, N.K., Ryf, R., Chen, H., Neilson, D.T., Kim, K., Carpenter, J.: Laguerre-Gaussian mode sorter. Nature Communications10(1), 1865 (2019) https://doi.org/10.1038/s41467-019-09840-4
2019 doi
- [43]
-
[44]
Nature Communications10(1), 5085 (2019) https://doi.org/ 10.1038/s41467-019-13059-8
Mounaix, M., Carpenter, J.: Control of the temporal and polarization response of a multimode fiber. Nature Communications10(1), 5085 (2019) https://doi.org/ 10.1038/s41467-019-13059-8
2019 doi
-
[45]
Physical Review Letters104(10), 100601 (2010) https://doi.org/10.1103/PhysRevLett.104.100601
Popoff, S.M., Lerosey, G., Carminati, R., Fink, M., Boccara, A.C., Gigan, S.: Measuring the transmission matrix in optics: An approach to the study and con- trol of light propagation in disordered media. Physical Review Letters104(10), 100601 (2010) https://doi.org/10.1103/Phy...
2010 doi
-
[46]
Physical Review Letters 116(25), 253901 (2016) https://doi.org/10.1103/PhysRevLett.116.253901 17
Mounaix, M., Andreoli, D., Defienne, H., Volpe, G., Katz, O., Gr´ esillon, S., Gigan, S.: Spatiotemporal Coherent Control of Light through a Multiple Scatter- ing Medium with the Multispectral Transmission Matrix. Physical Review Letters 116(25), 253901 (2016) https://doi.org/...
2016 doi
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