REVIEW 3 major objections 5 minor 58 references
Harnessing Native Chromium Oxidation for Giant Orbital Torque and Field-Free Magnetization Switching in NiFe/Cr Bilayers
T0 review · 3 major / 5 minor · reviewed 2026-08-01 · deepseek-v4-flash
Pith's one-line read The paper claims that the native oxide that spontaneously forms on chromium turns a simple NiFe/Cr bilayer into a dual-channel orbital-current source, with a damping-like torque efficiency of 3.9 × 10^6 Ω⁻¹ m⁻¹ and field-free magnetization
desk verdict Serious experimental claim with strong controls, but the interface-dominance decomposition leans on an ad hoc tanh activation that is assumed, not derived. 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 Cr/CrOx interface formed by self-limiting native oxidation (about 3 nm of graded Cr2O3 on top of metallic Cr). The mechanism is the interfacial orbital Rashba–Edelstein effect: the inversion-symmetry-breaking oxide interface converts charge current into orbital angular-momentum current, which then travels through the metallic Cr channel and is transferred into NiFe. The fitting model introduces an 'oxidation-gated' source term, multiplying the interfacial efficiency by g(t) = tanh(d/λ), where d is the metallic Cr thickness minus the oxide thickness and λ ≈ 4 nm is the orbital transport length; the product of this rising activation with the decaying transmission
What would settle it
Prepare a series of NiFe/Cr devices in which oxidation is precisely controlled—ranging from zero (in-situ capping, no air exposure) to several nanometres of deliberately grown Cr2O3—and measure the damping-like torque efficiency versus total Cr thickness. If the large torque and its non-monotonic peak are absent when no oxide is present, or if the peak thickness fails to move by the oxide thickness as d = t − t_ox changes, the oxidation-gated interfacial-source mechanism is falsified.
Extended reading notes
Core claim
The central claim is that a naturally oxidized NiFe/Cr heterostructure acts as a self-contained dual-channel orbital-current source. First-principles calculations indicate that oxygenating the Cr surface nearly triples the orbital Hall conductivity, through Cr 3d–O 2p hybridization. Harmonic Hall measurements find that the damping-like torque efficiency grows with Cr thickness to a clear maximum near 8 nm and then falls, a non-monotonic shape that a constant bulk plus constant interfacial source cannot produce. The paper accounts for it with a drift-diffusion model in which the interfacial orbital Rashba–Edelstein source is 'activated' by oxidation through a tanh(d/λ) factor, yielding an int
Load-bearing premise
The load-bearing premise is that the interfacial orbital-current source switches on with the ad hoc activation function g(t) = tanh(d/λ); because that functional form is assumed rather than derived, an incorrect source-thickness dependence would collapse the central division into a dominant interfacial and a minor bulk channel.
Editorial extensions
If this is right
- If the interfacial source is real, suppressing oxidation (for example by capping) should kill the large torque, as the authors demonstrate; this turns intentional oxidation into a control knob rather than an uncontrollable defect.
- Devices based on this mechanism need no heavy-metal layer for orbital-to-spin conversion, removing the Pt/Ta/W overhead that usually accompanies orbital-torque devices.
- Field-free switching at 1.58 × 10^11 A/m² follows from the large torque combined with a built-in anisotropy tilt created by the same stack, so one material system provides generation, conversion, and switching.
- Orbital unidirectional magnetoresistance tracks the torque across the thickness series, giving a separate transport signature that can identify orbital accumulation in other candidate materials.
- Other light metals with self-limiting native oxides could be screened for the same behavior, expanding the material set for low-power orbitronics.
Reading between the lines
- A strong consequence the paper leaves implicit: the peak torque thickness should shift by roughly the oxide thickness if oxidation conditions are changed, because the metallic channel thickness d = t − t_ox sets the transmission; this can be checked with controlled plasma oxidation.
- If the oxidation-gated description is right, the interfacial torque could be modulated in operando by oxygen migration under an electric field or current, opening a route to electrically tunable orbital torque.
- The close correlation between torque and orbital unidirectional magnetoresistance suggests a cheap all-electrical screening protocol for other candidate oxides: measure longitudinal second-harmonic resistance first, then reserve full harmonic-Hall torque analysis for the strongest candidates.
Signed reviews
Editorial analysis
A structured set of objections, weighed in public.
Referee Report
Summary. The manuscript reports that naturally oxidized NiFe/Cr bilayers act as a self-contained orbital-current source, with a damping-like torque efficiency of (3.9 ± 0.7) × 10^6 Ω⁻¹m⁻¹ at Cr* = 8 nm, non-monotonic thickness dependence, and field-free magnetization switching at 1.58 × 10^11 A/m². First-principles calculations predict an approximately threefold enhancement of the orbital Hall conductivity upon surface oxygenation. A drift-diffusion model with a bulk orbital Hall effect and an oxidation-activated interfacial orbital Rashba–Edelstein source is used to decompose the torque into bulk and interfacial contributions. Two control experiments (Ta capping and Cu spacer) and OUMR correlations are presented to support the oxide-interface mechanism. The authors conclude that the Cr/CrOx interface dominates over the bulk orbital Hall channel by roughly an order of magnitude, with an orbital transport length of ≈4 nm.
Significance. If the conclusions are correct, the work is significant: it would establish native oxidation of a 3d metal as a scalable, heavy-metal-free orbital-torque source with record efficiency and field-free switching. The paper has genuine strengths: two control experiments separating source and conversion, an OUMR–torque correlation across the thickness series, and first-principles support for oxygen-enhanced orbital Hall conductivity. However, the quantitative interfacial-dominance claim rests on an ad hoc activation function, and the reported fit parameters are numerically inconsistent with the headline data. These issues are load-bearing for the central claim and must be resolved before the quantitative message can be accepted.
major comments (3)
- [§2 around Eq. (4)] The quoted fit parameters are numerically impossible. Since tanh(x)sech(x) ≤ 0.5 for all x, the maximum of ξ_DL^E(t) = ξ_B[1 − sech(d/λ)] + ξ_I tanh(d/λ)sech(d/λ) is at most ξ_B + 0.5 ξ_I. With ξ_B = 0.29×10^6 and ξ_I = 3.7×10^6 Ω⁻¹m⁻¹, this upper bound is ≈2.14×10^6 Ω⁻¹m⁻¹, yet the data peak is (3.9 ± 0.7)×10^6 Ω⁻¹m⁻¹. Thus Eq. (4) with the stated parameters cannot reproduce the reported peak. The values of ξ_I, ξ_B, and λ — and the derived ξ_I/ξ_B ≈ 13 — need to be re-evaluated and the fit re-presented.
- [§2, Eq. (2) and Eq. (4)] The activation function is introduced ad hoc as 'diffusion-alike' but is not derived from the oxidation kinetics, boundary conditions, or drift-diffusion equations. Because this functional form is chosen specifically to produce an interior maximum, the extracted interfacial dominance is not an independent test of the mechanism. The authors should either derive g(d) from a microscopic model (e.g., the XPS oxidation profile) or present model-selection/uncertainty analysis against other source-growth functions (step, linear, error-function). The same concern applies to the FL-based λ: Eq. (2) assumes a single bulk source, whereas the authors' own model allows an interfacial contribution to the FL torque.
- [§2 and DFT sections] Bulk Cr is an antiferromagnet below ≈311 K, yet the manuscript nowhere discusses whether the Cr layers in these polycrystalline films are magnetically ordered at room temperature, nor how possible AFM order or proximity effects at the NiFe/Cr interface would affect the harmonic-Hall analysis, the drift-diffusion model, or the DFT calculation of the orbital Hall conductivity. The authors should address this with measurements (e.g., exchange-bias field, M(T), or a thin-film TN suppression argument) or explicitly justify treating Cr as nonmagnetic in the model.
minor comments (5)
- [References] Ref. [34] has a malformed DOI ('10.1103/qgdy-k39l') and Ref. [48] lacks volume/page details; both need correction.
- [Abstract] 'NiFe\Cr' in the abstract should be 'NiFe/Cr' for consistency.
- [Eq. (2)] Equation (2) is presented without a prefactor; define the full expression or state that it represents the functional form only.
- [OUMR section] The phrase 'At sufficiently large magnetic fields which suppresses the magnon contribution' is grammatically awkward; rephrase.
- [Switching section] The field-free switching is attributed to an in-plane anisotropy tilt, but the origin of the tilt is not explained; a sentence or reference clarifying this would be helpful.
Circularity Check
No significant circularity: the central torque decomposition is fit-dependent but not definitionally forced, and independent controls and OUMR provide out-of-sample support.
full rationale
The thickness analysis introduces the oxidation-gated source in Eq. (4) as an explicit ansatz: 'We therefore introduce an oxidation-gated interfacial source, replacing (ξ_I) with (ξ_I g(t))' with g(t)=tanh(d/λ). This is an admitted model choice, not a hidden reuse of the target conclusion; the subsequent ξ_I ≈ 3.7×10^6 Ω^-1 m^-1 and ξ_B ≈ 0.29×10^6 Ω^-1 m^-1 are least-squares outputs, not inputs, and the paper does not label them as independent predictions. The constant-source model (Eq. 3) is shown to be monotonic, and the controls (Ta-capped sample, Cu-spacer sample) are true out-of-sample tests of the oxide-interface role, as are the OUMR thickness correlations. The first-principles OHC enhancement is computed independently of the transport fit. The only self-citations ([44], [61]) are methodological and not load-bearing. The main caveat—that tanh(d/λ)sech(d/λ) is one of many possible envelope functions, so the extracted ξ_I/ξ_B and λ are underdetermined—is an identifiability/correctness concern, not a circular definition or a fitted parameter renamed as a prediction, and therefore does not meet the threshold for a circularity finding.
Assumptions & free parameters
free parameters (4)
- orbital transport length λ =
4.1 ± 1.1 nm (DL fit); 4.3 ± 0.7 nm (FL fit)
- interfacial source efficiency ξ_I =
(3.7 ± 1.02) × 10^6 Ω^-1 m^-1
- bulk source efficiency ξ_B =
(0.29 ± 0.12) × 10^6 Ω^-1 m^-1
- native oxide thickness t_ox =
≈3 nm (from XPS of 6.5 and 11 nm stacks)
assumptions (5)
- domain assumption Orbital transport in metallic Cr obeys a 1D diffusion equation ∂z^2 δμ_L = δμ_L/λ^2 with a single effective length λ.
- domain assumption Both bulk OHE and interfacial OREE currents are converted into spin torque in NiFe with a common, thickness-independent efficiency η.
- domain assumption The native oxide is abrupt and self-limiting at ~3 nm, so d = t - t_ox is the metallic Cr channel thickness.
- ad hoc to paper The interfacial OREE source strength scales as g(t) = tanh(d/λ).
- domain assumption The Cr layer is magnetically inert in the model; possible antiferromagnetic order or exchange coupling at room temperature is neglected.
Cite this review
Pith. "Pith review of Harnessing Native Chromium Oxidation for Giant Orbital Torque and Field-Free Magnetization Switching in NiFe/Cr Bilayers." pith.science (2026). https://pith.science/paper/NWVNVDOP
@misc{pith2026260727306,
author = {Pith},
title = {Pith review of: Harnessing Native Chromium Oxidation for Giant Orbital Torque and Field-Free Magnetization Switching in NiFe/Cr Bilayers},
year = {2026},
howpublished = {\url{https://pith.science/paper/NWVNVDOP}},
note = {Machine review of arXiv:2607.27306}
}
abstract
Orbital currents offer charge-to-spin conversion beyond the efficiency limit of conventional heavy-metal Spin Hall sources. However, harnessing them has so far required either thick orbital-Hall materials or additional heavy-metal conversion layers. Here, we show that the native oxide of chromium, typically regarded as parasitic, transforms a simple NiFe\Cr bilayer into a self-contained dual-channel orbital-current source without the need for any conversion layer. First-principles calculations predict a nearly threefold enhancement of the orbital Hall conductivity upon surface oxygenation, driven by Cr(3d)-O(2p) hybridization. Experimentally, naturally oxidized NiFe\Cr heterostructures exhibit a giant damping-like torque efficiency of $3.9 \times 10^{6}$ $\Omega^{-1}$ m$^{-1}$, exceeding Pt (Ta) by one (two) orders of magnitude. The torque depicts a non-monotonic Cr-thickness dependence which cannot be explained by a conventional model. We have developed a drift-diffusion model with an oxidation-gated interfacial source which quantitatively reproduces the data, revealing that the Cr-CrO$_x$ interface generates orbital currents over an order of magnitude stronger than the bulk orbital Hall channel with an orbital transport length of $\approx 4$ nm. The enhanced torque enables field-free magnetization switching at $1.58 \times 10^{11}$ A m$^{-2}$, outperforming heavy-metal and CuO$_x$ benchmarks. These results establish native oxidation as a scalable strategy for realizing efficient orbital-torque devices.
Reference graph
Works this paper leans on
-
[1]
Electrical control of magnetism by electric field and current -induced torques,
Fert, A., Ramesh, R., Garcia, V., Casanova, F., Bibes, M., "Electrical control of magnetism by electric field and current -induced torques," Reviews of Modern Physics 96, no. 1 (2024), https://doi.org/10.1103/RevModPhys.96.015005
-
[2]
Current -induced spin -orbit torques in ferromagnetic and antiferromagnetic systems,
Manchon, A., Železný, J., Miron, I. M., et al., "Current -induced spin -orbit torques in ferromagnetic and antiferromagnetic systems," Reviews of Modern Physics 91, no. 3 (2019), https://doi.org/10.1103/RevModPhys.91.035004
-
[3]
Sinova, J., Valenzuela, S. O., Wunderlich, J., Back, C. H., Jungwirth, T., "Spin Hall effects," Reviews of Modern Physics 87, no. 4 (2015), https://doi.org/10.1103/RevModPhys.87.1213
-
[4]
Nguyen, M. -H., Ralph, D. C., Buhrman, R. A., "Spin Torque Study of the Spin Hall Conductivity and Spin Diffusion Length in Platinum Thin Films with Varying Resistivity," Physical Review Letters 116, no. 12 (2016), https://doi.org/10.1103/PhysRevLett.116.126601
-
[5]
Hirsch, J. E., "Spin Hall Effect," Physical Review Letters 83, no. 9 (1999), https://doi.org/10.1103/PhysRevLett.83.1834
-
[6]
Bulk and interface spin -orbit torques in Pt/Co/MgO thin film structures,
Gabor, M. S., Belmeguenai, M., Miron, I. M., "Bulk and interface spin -orbit torques in Pt/Co/MgO thin film structures," Physical Review B 109, no. 10 (2024), https://doi.org/10.1103/PhysRevB.109.104407
-
[7]
Spin-Torque Switching with the Giant Spin Hall Effect of Tantalum,
Liu, L., Pai, C.-F., Li, Y., Tseng, H. W., Ralph, D. C., Buhrman, R. A., "Spin-Torque Switching with the Giant Spin Hall Effect of Tantalum," Science 336, no. 6081 (2012), https://doi.org/10.1126/science.1218197
-
[8]
Orbitronics: Mechanisms, Materials and Devices,
Wang, P., Chen, F., Yang, Y., et al., "Orbitronics: Mechanisms, Materials and Devices," Advanced Electronic Materials 11, no. 5 (2025), https://doi.org/https://doi.org/10.1002/aelm.202400554
Show all 58 references
-
[9]
From discovery to device: The orbital Hall effect in memory applications,
Feng, B., Wang, P., Duan, J., Liu, P., Zhang, D., Jiang, Y., "From discovery to device: The orbital Hall effect in memory applications," Journal of Applied Physics 139, no. 24 (2026), https://doi.org/10.1063/5.0325538
2026 doi
-
[10]
Orbital torque: Torque generation by orbital current injection,
Go, D., Lee, H. -W., "Orbital torque: Torque generation by orbital current injection," Physical Review Research 2, no. 1 (2020), https://doi.org/10.1103/PhysRevResearch.2.013177
2020 doi
-
[11]
Giant orbital Hall effect and orbital -to-spin conversion in $3d$, $5d$, and $4f$ metallic heterostructures,
Sala, G., Gambardella, P., "Giant orbital Hall effect and orbital -to-spin conversion in $3d$, $5d$, and $4f$ metallic heterostructures," Physical Review Research 4, no. 3 (2022), https://doi.org/10.1103/PhysRevResearch.4.033037
2022 doi
-
[12]
Gigantic intrinsic orbital Hall effects in weakly spin -orbit coupled metals,
Jo, D., Go, D., Lee, H. -W., "Gigantic intrinsic orbital Hall effects in weakly spin -orbit coupled metals," Physical Review B 98, no. 21 (2018), https://doi.org/10.1103/PhysRevB.98.214405
2018 doi
-
[13]
Intrinsic spin Hall effect and orbital Hall effect in $4d$ and $5d$ transition metals,
Tanaka, T., Kontani, H., Naito, M., et al., "Intrinsic spin Hall effect and orbital Hall effect in $4d$ and $5d$ transition metals," Physical Review B 77, no. 16 (2008), https://doi.org/10.1103/PhysRevB.77.165117
2008 doi
-
[14]
Giant Orbital Hall Effect in Transition Metals: Origin of Large Spin and Anomalous Hall Effects,
Kontani, H., Tanaka, T., Hirashima, D. S., Yamada, K., Inoue, J., "Giant Orbital Hall Effect in Transition Metals: Origin of Large Spin and Anomalous Hall Effects," Physical Review Letters 102, no. 1 (2009), https://doi.org/10.1103/PhysRevLett.102.016601
2009 doi
-
[15]
Tailoring Neuromorphic Switching by ${\mathrm{Cu} \mathrm{N}}_{x}$ -Mediated Orbital Currents,
Chen, T. -Y., Hsiao, Y. -C., Liao, W. -B., Pai, C. -F., "Tailoring Neuromorphic Switching by ${\mathrm{Cu} \mathrm{N}}_{x}$ -Mediated Orbital Currents," Physical Review Applied 17, no. 6 (2022), https://doi.org/10.1103/PhysRevApplied.17.064005
2022 doi
-
[16]
Orbital torque originating from orbital Hall effect in Zr,
Fukunaga, R., Haku, S., Hayashi, H., Ando, K., "Orbital torque originating from orbital Hall effect in Zr," Physical Review Research 5, no. 2 (2023), https://doi.org/10.1103/PhysRevResearch.5.023054
2023 doi
-
[17]
Magneto -Optical Detection of the Orbital Hall Effect in Chromium,
Lyalin, I., Alikhah, S., Berritta, M., Oppeneer, P. M., Kawakami, R. K., "Magneto -Optical Detection of the Orbital Hall Effect in Chromium," Physical Review Letters 131, no. 15 (2023), https://doi.org/10.1103/PhysRevLett.131.156702
2023 doi
-
[18]
Observation of the orbital Hall effect in a light metal Ti,
Choi, Y.-G., Jo, D., Ko, K.-H., et al., "Observation of the orbital Hall effect in a light metal Ti," Nature 619, no. 7968 (2023), https://doi.org/10.1038/s41586 -023-06101-9
2023 doi
-
[19]
Efficient Noncollinear Antiferromagnetic State Switching Induced by the Orbital Hall Effect in Chromium,
Xie, H., Zhang, N., Ma, Y., Chen, X., Ke, L., Wu, Y., "Efficient Noncollinear Antiferromagnetic State Switching Induced by the Orbital Hall Effect in Chromium," Nano Letters 23, no. 22 (2023), https://doi.org/10.1021/acs.nanolett.3c02797
2023 doi
-
[21]
Harnessing Orbital -to-Spin Conversion of Interfacial Orbital Currents for Efficient Spin -Orbit Torques,
Ding, S., Ross, A., Go, D., et al., "Harnessing Orbital -to-Spin Conversion of Interfacial Orbital Currents for Efficient Spin -Orbit Torques," Physical Review Letters 125, no. 17 (2020), https://doi.org/10.1103/PhysRevLett.125.177201
2020 doi
-
[22]
Large dampinglike torque contribution originating from the orbital Rashba -Edelstein effect at a Pt/CoO interface,
Wang, B., Guo, Y., Qi, X., et al., "Large dampinglike torque contribution originating from the orbital Rashba -Edelstein effect at a Pt/CoO interface," Physical Review B 110, no. 10 (2024), https://doi.org/10.1103/PhysRevB.110.104404
2024 doi
-
[24]
Comparative Study of Current -Induced Torque in Cr/CoFeB/MgO and W/CoFeB/MgO,
Chiba, S., Marui, Y., Ohno, H., Fukami, S., "Comparative Study of Current -Induced Torque in Cr/CoFeB/MgO and W/CoFeB/MgO," Nano Letters 24, no. 44 (2024), https://doi.org/10.1021/acs.nanolett.4c03809
2024 doi
-
[25]
Current -Induced Magnetization Switching in Light -Metal- Oxide/Ferromagnetic -Metal Bilayers via Orbital Rashba Effect,
Huang, Q., Liu, S., Yang, T., et al., "Current -Induced Magnetization Switching in Light -Metal- Oxide/Ferromagnetic -Metal Bilayers via Orbital Rashba Effect," Nano Letters 23, no. 23 (2023), https://doi.org/10.1021/acs.nanolett.3c03972
2023 doi
-
[26]
Quantifying the large contribution from orbital Rashba–Edelstein effect to the effective damping -like torque on magnetization,
Krishnia, S., Bony, B., Rongione, E., et al., "Quantifying the large contribution from orbital Rashba–Edelstein effect to the effective damping -like torque on magnetization," APL Materials 12, no. 5 (2024), https://doi.org/10.1063/5.0198970
2024 doi
-
[27]
Oxidation-Tuned CuOx for Spin–Orbit Torque Efficiency Enhancement,
Li, C.-J., Pai, C.-F., "Oxidation-Tuned CuOx for Spin–Orbit Torque Efficiency Enhancement," ACS Applied Materials & Interfaces 17, no. 44 (2025), https://doi.org/10.1021/acsami.5c15854
2025 doi
-
[28]
Tunable Spin and Orbital Torques in Cu -Based Magnetic Heterostructures,
Damerio, S., Avci, C. O., "Tunable Spin and Orbital Torques in Cu -Based Magnetic Heterostructures," Nano Letters 25, no. 6 (2025), https://doi.org/10.1021/acs.nanolett.4c05170
2025 doi
-
[30]
Orbital Angular Momentum Correlated Charge to Spin Conversion in Metallic Antiferromagnet,
Zhu, Z., Cheng, L., Xu, X., et al., "Orbital Angular Momentum Correlated Charge to Spin Conversion in Metallic Antiferromagnet," Advanced Materials 37, no. 17 (2025), https://doi.org/https://doi.org/10.1002/adma.202418264
2025 doi
-
[31]
Oxide layer dependent orbital torque efficiency in ferromagnet/Cu/oxide heterostructures,
Kim, J., Uzuhashi, J., Horio, M., et al., "Oxide layer dependent orbital torque efficiency in ferromagnet/Cu/oxide heterostructures," Physical Review Materials 7, no. 11 (2023), https://doi.org/10.1103/PhysRevMaterials.7.L111401
2023 doi
-
[32]
Enhanced torque efficiency in ferromagnetic multilayers by introducing naturally oxidized Cu,
Zheng, K., Cao, C., Lu, Y., et al., "Enhanced torque efficiency in ferromagnetic multilayers by introducing naturally oxidized Cu," Applied Physics Letters 124, no. 19 (2024), https://doi.org/10.1063/5.0190257
2024 doi
-
[33]
Mitigation of Gilbert Damping in the CoFe/CuOx Orbital Torque System,
Ding, S., Wang, H., Legrand, W., Noël, P., Gambardella, P., "Mitigation of Gilbert Damping in the CoFe/CuOx Orbital Torque System," Nano Letters 24, no. 33 (2024), https://doi.org/10.1021/acs.nanolett.4c02613
2024 doi
-
[34]
Large Orbital Torque from Interfacial Spin-Vorticity Coupling in PtCo/Cu Heterostructures,
Yi, L., Yang, T., Tan, C., et al., "Large Orbital Torque from Interfacial Spin-Vorticity Coupling in PtCo/Cu Heterostructures," Physical Review Letters 135, no. 15 (2025), https://doi.org/10.1103/qgdy -k39l
2025 doi
-
[35]
Intrinsic Spin and Orbital Hall Effects from Orbital Texture,
Go, D., Jo, D., Kim, C., Lee, H. -W., "Intrinsic Spin and Orbital Hall Effects from Orbital Texture," Physical Review Letters 121, no. 8 (2018), https://doi.org/10.1103/PhysRevLett.121.086602
2018 doi
-
[36]
Toward surface orbitronics: giant orbital magnetism from the orbital Rashba effect at the surface of sp -metals,
Go, D., Hanke, J. -P., Buhl, P. M., et al., "Toward surface orbitronics: giant orbital magnetism from the orbital Rashba effect at the surface of sp -metals," Scientific Reports 7, no. 1 (2017), https://doi.org/10.1038/srep46742
2017 doi
-
[37]
Nontrivial torque generation by orbital angular momentum injection in ferromagnetic -metal/$\mathrm{Cu}/{\mathrm{Al}}_{2}{ \mathrm{O}}_{3}$ trilayers,
Kim, J., Go, D., Tsai, H., et al., "Nontrivial torque generation by orbital angular momentum injection in ferromagnetic -metal/$\mathrm{Cu}/{\mathrm{Al}}_{2}{ \mathrm{O}}_{3}$ trilayers," Physical Review B 103, no. 2 (2021), https://doi.org/10.1103/PhysRevB.103.L020407
2021 doi
-
[38]
Electrical Manipulation of Orbital Current Via Oxygen Migration in Ni81Fe19/CuOx/TaN Heterostructure,
An, T., Cui, B., Zhang, M., et al., "Electrical Manipulation of Orbital Current Via Oxygen Migration in Ni81Fe19/CuOx/TaN Heterostructure," Advanced Materials 35, no. 25 (2023), https://doi.org/https://doi.org/10.1002/adma.202300858
2023 doi
-
[39]
Enhancement of torque efficiency and spin Hall angle driven collaboratively by orbital torque and spin –orbit torque,
Xiao, Z.-Y., Li, Y.-J., Zhang, W., et al., "Enhancement of torque efficiency and spin Hall angle driven collaboratively by orbital torque and spin –orbit torque," Applied Physics Letters 121, no. 7 (2022), https://doi.org/10.1063/5.0086125
2022 doi
-
[40]
Efficient conversion of orbital Hall current to spin current for spin -orbit torque switching,
Lee, S., Kang, M.-G., Go, D., et al., "Efficient conversion of orbital Hall current to spin current for spin -orbit torque switching," Communications Physics 4, no. 1 (2021), https://doi.org/10.1038/s42005 -021-00737-7
2021 doi
-
[41]
Efficient Magnetization Switching via Orbital -to- Spin Conversion in Cr/W -Based Heterostructures,
Hu, C.-Y., Song, M.-Y., Bao, X., Pai, C.-F., "Efficient Magnetization Switching via Orbital -to- Spin Conversion in Cr/W -Based Heterostructures," ACS Applied Electronic Materials 7, no. 9 (2025), https://doi.org/10.1021/acsaelm.5c00116
2025 doi
-
[42]
Characterization of the native Cr2O3 oxide surface of CrO2,
Cheng, R., Xu, B., Borca, C. N., et al., "Characterization of the native Cr2O3 oxide surface of CrO2," Applied Physics Letters 79, no. 19 (2001), https://doi.org/10.1063/1.1416474
2001 doi
-
[43]
Magnetic effect on the interfacial energy of the Ni(1 1 1)/Cr(1 1 0) interface,
Lu, S., Zhang, H., Hu, Q. -M., Punkkinen, M. P. J., Johansson, B., Vitos, L., "Magnetic effect on the interfacial energy of the Ni(1 1 1)/Cr(1 1 0) interface," Journal of Physics: Condensed Matter 26, no. 35 (2014), https://doi.org/10.1088/0953 -8984/26/35/355001
2014 doi
-
[44]
Mohanta, M. K., Arora, A., De Sarkar, A., "Effective modulation of ohmic contact and carrier concentration in a graphene -$\mathrm{Mg}X$ ($X= \mathrm{S}, \mathrm{Se}$) van der Waals heterojunction with tunable band -gap opening via strain and electric field," Physical Review B...
2021 doi
-
[45]
Interplay of spin -orbit torque and thermoelectric effects in ferromagnet/normal -metal bilayers,
Avci, C. O., Garello, K., Gabureac, M., et al., "Interplay of spin -orbit torque and thermoelectric effects in ferromagnet/normal -metal bilayers," Physical Review B 90, no. 22 (2014), https://doi.org/10.1103/PhysRevB.90.224427
2014 doi
-
[46]
Quantitative characterization of the spin - orbit torque using harmonic Hall voltage measurements,
Hayashi, M., Kim, J., Yamanouchi, M., Ohno, H., "Quantitative characterization of the spin - orbit torque using harmonic Hall voltage measurements," Physical Review B 89, no. 14 (2014), https://doi.org/10.1103/PhysRevB.89.144425
2014 doi
-
[47]
Fieldlike and antidamping spin -orbit torques in as - grown and annealed Ta/CoFeB/MgO layers,
Avci, C. O., Garello, K., Nistor, C., et al., "Fieldlike and antidamping spin -orbit torques in as - grown and annealed Ta/CoFeB/MgO layers," Physical Review B 89, no. 21 (2014), https://doi.org/10.1103/PhysRevB.89.214419
2014 doi
-
[48]
Giant Orbital Rashba –Edelstein Effect in Crystalline Cu2O/Cu Heterostructures,
Ko, S., Kang, J., Kim, S. J., et al., "Giant Orbital Rashba –Edelstein Effect in Crystalline Cu2O/Cu Heterostructures," Advanced Materials n/a, no. n/a (2026), https://doi.org/https://doi.org/10.1002/adma.73522
2026 doi
-
[49]
Magnetization switching driven by magnonic spin dissipation,
Choi, W.-Y., Ha, J.-H., Jung, M.-S., et al., "Magnetization switching driven by magnonic spin dissipation," Nature Communications 16, no. 1 (2025), https://doi.org/10.1038/s41467 -025-61073-w
2025 doi
-
[50]
Orbital Hall effect in transition metals from first -principles scattering calculations,
Rang, M., Kelly, P. J., "Orbital Hall effect in transition metals from first -principles scattering calculations," Physical Review B 111, no. 12 (2025), https://doi.org/10.1103/PhysRevB.111.125121
2025 doi
-
[51]
Interface transparency to orbital current,
Lyalin, I., Kawakami, R. K., "Interface transparency to orbital current," Physical Review B 110, no. 10 (2024), https://doi.org/10.1103/PhysRevB.110.104418
2024 doi
-
[52]
Evidence of orbital Hall current - induced correlation in second -harmonic response of longitudinal and transverse voltage in light metal – ferromagnet bilayers,
Mahapatra, D., Bhunia, H., Miah, A. B., Aon, S., Mitra, P., "Evidence of orbital Hall current - induced correlation in second -harmonic response of longitudinal and transverse voltage in light metal – ferromagnet bilayers," Applied Physics Letters 126, no. 24 (2025), https://d...
2025 doi
-
[53]
Unidirectional orbital magnetoresistance in light -metal--ferromagnet bilayers,
Ding, S., Noël, P., Krishnaswamy, G. K., Gambardella, P., "Unidirectional orbital magnetoresistance in light -metal--ferromagnet bilayers," Physical Review Research 4, no. 3 (2022), https://doi.org/10.1103/PhysRevResearch.4.L032041
2022 doi
-
[54]
Unidirectional spin Hall magnetoresistance in ferromagnet/normal metal bilayers,
Avci, C. O., Garello, K., Ghosh, A., Gabureac, M., Alvarado, S. F., Gambardella, P., "Unidirectional spin Hall magnetoresistance in ferromagnet/normal metal bilayers," Nature Physics 11, no. 7 (2015), https://doi.org/10.1038/nphys3356
2015 doi
-
[55]
Magnetoresistance of heavy and light metal/ferromagnet bilayers,
Avci, C. O., Garello, K., Mendil, J., et al., "Magnetoresistance of heavy and light metal/ferromagnet bilayers," Applied Physics Letters 107, no. 19 (2015), https://doi.org/10.1063/1.4935497
2015 doi
-
[56]
Origins of the Unidirectional Spin Hall Magnetoresistance in Metallic Bilayers,
Avci, C. O., Mendil, J., Beach, G. S. D., Gambardella, P., "Origins of the Unidirectional Spin Hall Magnetoresistance in Metallic Bilayers," Physical Review Letters 121, no. 8 (2018), https://doi.org/10.1103/PhysRevLett.121.087207
2018 doi
-
[57]
Orbital magnetoresistance in the antiferromagnet CoO driven by dynamic orbital angular momentum,
Schmitt, C., Krishnia, S., Zeer, M., et al., "Orbital magnetoresistance in the antiferromagnet CoO driven by dynamic orbital angular momentum," Science 393, no. 6806 (2026), https://doi.org/10.1126/science.adw1808
2026 doi
-
[58]
Anatomy of Type -x Spin -Orbit-Torque Switching,
Liu, Y. -T., Huang, C. -C., Chen, K. -H., et al., "Anatomy of Type -x Spin -Orbit-Torque Switching," Physical Review Applied 16, no. 2 (2021), https://doi.org/10.1103/PhysRevApplied.16.024021
2021 doi
-
[59]
A spin –orbit torque switching scheme with collinear magnetic easy axis and current configuration,
Fukami, S., Anekawa, T., Zhang, C., Ohno, H., "A spin –orbit torque switching scheme with collinear magnetic easy axis and current configuration," Nature Nanotechnology 11, no. 7 (2016), https://doi.org/10.1038/nnano.2016.29
2016 doi
-
[60]
Spin –orbit torque as a method for field -free detection of in -plane magnetization switching,
Khang, N. H. D., Hai, P. N., "Spin –orbit torque as a method for field -free detection of in -plane magnetization switching," Applied Physics Letters 117, no. 25 (2020), https://doi.org/10.1063/5.0033158
2020 doi
-
[61]
Odd symmetry planar Hall effect: A method of detecting current -induced in-plane magnetization switching,
Posti, R., Kumar, A., Baghoria, M., Prakash, B., Tiwari, D., Roy, D., "Odd symmetry planar Hall effect: A method of detecting current -induced in-plane magnetization switching," Applied Physics Letters 122, no. 15 (2023), https://doi.org/10.1063/5.0143904
2023 doi
Reviewed August 1, 2026 · model on record in the stance chip above.
Discussion (0). Continue with ORCID to comment.