#subbands
Analytical solutions of the Dirac equation for electrons confined to atomic chains reveal quantized energy states with principal quantum numbers analogous to hydrogen, with spectral bands splitting into fine structure subbands—extending relativistic quantum mechanics to one-di...
Dirac Equation Solution for Electrons in Charged Atomic Chains
iq.fp2.dev
September 9, 2026 at 10:26 PM
Analyze 2D Discrete Wavelet Transform (DWT) image compression live in your browser: bionichaos.com/Image_compre...

Decompose clinical MRIs into multi-resolution subbands, adjust quantization bits, and measure real-time PSNR/MSE fidelity.
Image Compression using Wavelet Transform - Interactive Laboratory
Explore real-time Discrete Wavelet Transform (DWT) image compression, subband decomposition, quantization, and PSNR quality assessment using real clinical neuroimages.
bionichaos.com
July 28, 2026 at 2:59 AM
Discovery and Timing of the First Millisecond Pulsar in NGC 6316. Deven Bhakta et. al. https://arxiv.org/abs/2603.06476
July 9, 2026 at 10:01 PM
Open Access UCL Research: Magnetoelectric subbands in the one-dimensional to quasi-one-dimensional confined regime discovery.ucl.ac.uk/id/eprint/10...
Magnetoelectric subbands in the one-dimensional to quasi-one-dimensional confined regime - UCL Discovery
UCL Discovery is UCL's open access repository, showcasing and providing access to UCL research outputs from all UCL disciplines.
discovery.ucl.ac.uk
June 17, 2026 at 12:47 PM
Dimpled scalar vortex coronagraph laboratory demonstration. Niyati Desai et. al. https://arxiv.org/abs/2603.22551
March 25, 2026 at 7:31 AM
Della Valle, Nigro, Bonacci, Colonna, Hofmann, Sch\"uler, Marzari, Zardo, Strocov: Direct observation of strain and confinement shaping the hole subbands of Ge quantum wells https://arxiv.org/abs/2603.18753 https://arxiv.org/pdf/2603.18753 https://arxiv.org/html/2603.18753
March 20, 2026 at 6:43 AM
Direct observation of strain and confinement shaping the hole subbands of Ge quantum wells
https://arxiv.org/pdf/2603.18753
Enrico Della Valle, Arianna Nigro, Miki Bonacci, Nicola Colonna, Andrea Hofmann, Michael Schüler, Nicola Marzari, Ilaria Zardo, Vladimir N. Strocov.
https://arxiv.org/abs/2603.18753
arXiv abstract link
arxiv.org
March 20, 2026 at 4:34 AM
Discovery and Timing of the First Millisecond Pulsar in NGC 6316. Deven Bhakta et. al. https://arxiv.org/abs/2603.06476
March 9, 2026 at 8:15 AM
F. Sfigakis, et al.: Magnetotransport Spectroscopy of Strongly Rashba-Split Hole Subbands Reveals Many-Body Interactions https://arxiv.org/abs/2602.12440 https://arxiv.org/pdf/2602.12440 https://arxiv.org/html/2602.12440
February 16, 2026 at 6:42 AM
Magnetotransport Spectroscopy of Strongly Rashba-Split Hole Subbands Reveals Many-Body Interactions
https://arxiv.org/pdf/2602.12440
F. Sfigakis et al.
https://arxiv.org/abs/2602.12440
arXiv abstract link
arxiv.org
February 16, 2026 at 4:30 AM
Min-Gue Kim, Min-Sik Kim, Kenji Watanabe, Takashi Taniguchi, Ju-Jin Kim, Myung-Ho Bae: Gate-tunable spin-resolved subbands in multilayer WSe2 probed by quantum point contact spectroscopy https://arxiv.org/abs/2511.23063 https://arxiv.org/pdf/2511.23063 https://arxiv.org/html/2511.23063
December 1, 2025 at 6:43 AM
Gate-tunable spin-resolved subbands in multilayer WSe2 probed by quantum point contact spectroscopy
https://arxiv.org/pdf/2511.23063
Min-Gue Kim, Min-Sik Kim, Kenji Watanabe, Takashi Taniguchi, Ju-Jin Kim, Myung-Ho Bae.
https://arxiv.org/abs/2511.23063
arXiv abstract link
arxiv.org
December 1, 2025 at 4:58 AM
M. P. Telenkov, Yu. A. Mityagin: Electron-electron scattering processes in quantum wells in a quantizing magnetic field: II. Scattering in the case of two subbands https://arxiv.org/abs/2510.09787 https://arxiv.org/pdf/2510.09787 https://arxiv.org/html/2510.09787
October 14, 2025 at 6:42 AM
Electron-electron scattering processes in quantum wells in a quantizing magnetic field: II. Scattering in the case of two subbands
https://arxiv.org/pdf/2510.09787
M.P. Telenkov, Yu.A. Mityagin.
https://arxiv.org/abs/2510.09787
arXiv abstract link
arxiv.org
October 14, 2025 at 4:31 AM
Submitted the following comment:
(Text version in alt)
July 19, 2025 at 3:40 AM
Theorized 50 years ago, we've only this year had the tech to create and observe it in a lab. The substrate is "twisted bilayer graphene" so not exactly your everyday material.

So it's pretty safe to say that we have zero evidence to suggest that the universe is this.

www.nature.com/articles/s41...
Spectroscopy of the fractal Hofstadter energy spectrum - Nature
High-resolution STM/STS visualizes the fractionalization of flat moiré bands into discrete Hofstadter subbands in moiré graphene near the predicted second magic angle, and experimentally establishes s...
www.nature.com
July 16, 2025 at 7:01 PM
transmit precoding. The proposed precoder selection does not require mutual information computation across subbands, thereby reducing time complexity. To solve the $\lambda$-based optimization problem, maximum cross-swapping algorithm (MCA) is applied [4/5 of https://arxiv.org/abs/2505.23154v1]
May 30, 2025 at 6:01 AM
nanowire close to the fundamental band gap. Because both the $E_{1}$ and $H_{1}$ subbands have quadratic dependence on $k_{z}$ when the gap closes, we need to consider at least three subbands, i.e., the $E_{1}$, $H_{1}$, and $H_{2}$ subbands, in [2/3 of https://arxiv.org/abs/2505.07478v1]
May 13, 2025 at 6:11 AM
valence subbands of the 15-13-15 AGNR superlattice are found to be accurately described by the Su-Schrieffer-Heeger (SSH) model, with topologically protected interface states forming at the junctions between 15- and 13-AGNR segments. We demonstrate [2/6 of https://arxiv.org/abs/2505.01662v1]
May 6, 2025 at 6:07 AM
(antisymmetric) subbands red- (blue-) shift, reversing in the conduction band until a degeneracy point. Beyond this threshold, symmetric bands flatten near band cutoffs, whereas antisymmetric bands form quasi-zero energy modes asymptotically [3/5 of https://arxiv.org/abs/2504.20258v1]
April 30, 2025 at 6:08 AM
split into symmetric and antisymmetric molecular-like subbands. Breaking IS induces a transition to a multi-Weyl metal, lifting the degeneracy of the Weyl node and closing the pseudogap. This causes opposite energy shifts: valence-band symmetric [2/5 of https://arxiv.org/abs/2504.20258v1]
April 30, 2025 at 6:08 AM
employing SSCCA with template signals derived via leave-one-out cross-validation (LOOCV). A filterbank generates bandpass filters for stimulus frequencies and their harmonics, whereas SSCCA calculates correlation coefficients between subbands and [4/5 of https://arxiv.org/abs/2504.14269v1]
April 22, 2025 at 6:15 AM
Gate tunable enhancement of supercurrent in hybrid planar Josephson junctions
Planar Josephson junctions (JJs) have emerged as a promising platform for the realization of topological superconductivity and Majorana zero modes. To obtain robust quasi one-dimensional (1D) topological superconducting states using planar JJs, limiting the number of 1D Andreev bound states' subbands that can be present, and increasing the size of the topological superconducting gap, are two fundamental challenges. It has been suggested that both problems can be addressed by properly designing the interfaces between the JJ's normal region and the superconducting leads. We fabricated Josephson junctions with periodic hole structures on the superconducting contact leads on InAs heterostructures with epitaxial superconducting Al. By depleting the chemical potential inside the hole region with a top gate, we observed an enhancement of the supercurrent across the junction. Such an enhancement is reproduced in theoretical simulations. The theoretical analysis shows that the enhancement of the JJ's critical current is achieved when the hole depletion is such to optimize the matching of quasiparticles' wave-function at the normal/superconductor interface. These results show how the combination of carefully designed patterns for the Al coverage, and external gates, can be successfully used to tune the density and wave functions' profiles in the normal region of the JJ, and therefore open a new avenue to tune some of the critical properties, such as number of subbands and size of the topological gap, that must be optimized to obtain robust quasi 1D superconducting states supporting Majorana bound states.
arxiv.org
April 17, 2025 at 4:50 AM
wavelet domain. Then, different-sized convolutions are applied to different frequency subbands, followed by inverse 3D DWT to restore the spatial domain. The 3DM-WeConv layer can be flexibly used within existing CNN-based LIC models.
We also [4/7 of https://arxiv.org/abs/2504.04658v1]
April 8, 2025 at 6:11 AM