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<!DOCTYPE html>
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<title>Research Interests - Nitin Kaushal</title>
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<li><a href="research_interests.html" class="active">Research Interests</a></li>
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<main class="research-page">
<section class="research-hero">
<p class="research-kicker">Condensed Matter Theory · Quantum Simulation</p>
<h1>Research Interests</h1>
<p class="research-lead">I study how interactions, orbital degrees of freedom, and spin-orbit coupling create unexpected phases of quantum matter.</p>
<p class="research-method-label">Techniques used</p>
<div class="method-list" aria-label="Research methods">
<span>Exact diagonalization</span>
<span>Density matrix renormalization group</span>
<span>Hartree–Fock</span>
<span>Monte Carlo</span>
<span>Quantum annealing/computation</span>
</div>
</section>
<section class="research-overview">
<div>
<p class="section-label">Research program</p>
<h2>From microscopic models to emergent quantum phases</h2>
</div>
<div class="overview-copy">
<p>
My research centers on correlated-electron and quantum many-body lattice models, with interests spanning unconventional magnetism (altermagetism, odd-parity magnets), topology, superconductivity, excitonic phases, orbital-selective Mott physics, and moiré systems. I am particularly interested in ground-state properties and collective excitations. More recently, I have been interested in the non-equilibrium dynamics, including quantum dynamics near criticality, and applications of quantum annealing.</p>
<p> Methodologically, we use unbiased numerical techniques with controlled analytical and mean-field approaches to access complementary physical regimes. We make extensive use of density-matrix renormalization group (DMRG) and matrix-product-state (MPS) methods for strongly correlated quantum systems, alongside exact diagonalization and other many-body techniques. I have also developed the efficient exact-diagonalization package <a href="https://github.com/nkphys/SCS_Lanczos" target="_blank" rel="noopener"><em>SCS_Lanczos</em></a>, which has been used in several collaborative studies.
</p>
</div>
</section>
<section class="research-topics" aria-labelledby="selected-work">
<div class="topics-heading">
<h2 id="selected-work">Selected work</h2>
</div>
<h2 class="research-direction">Unconventional Quantum Magnetism</h2>
<article class="research-card">
<div class="card-heading">
<span class="topic-number">01</span>
<div>
<p class="topic-tag">Multi-orbital correlations · Hybrid magnon-orbiton mode</p>
<h3>Spontaneous Altermagnetism in Correlated Electron Systems</h3>
</div>
</div>
<div class="split-feature">
<div class="card-copy">
<p>Our recent work explores how altermagnetism can emerge spontaneously in multi-orbital correlated systems. The interplay between spin and orbital order produces unconventional magnetic textures and distinct signatures in the collective spin excitation spectrum.</p>
<div class="paper-links">
<a href="https://arxiv.org/abs/2602.23522" target="_blank" rel="noopener">arXiv:2602.23522 <span aria-hidden="true">↗</span></a>
</div>
</div>
<figure>
<img src="images/Research/AltermagnetismSpinOrbital_1.png" alt="Spin and orbital textures with calculated collective spin spectra in a multi-orbital altermagnet" loading="lazy">
<figcaption>Coupled spin-orbital order and its dynamical response.</figcaption>
</figure>
</div>
</article>
<article class="research-card featured-card">
<div class="card-heading">
<span class="topic-number">02</span>
<div>
<p class="topic-tag">Altermagnetism · Hubbard models</p>
<h3>Altermagnetism in a Modified Lieb Lattice</h3>
</div>
</div>
<div class="card-copy">
<p>We investigated interaction-driven altermagnetism on the Lieb lattice as a model for quasi-2D oxychalcogenides. Using unrestricted Hartree–Fock and exact diagonalization, we identified spin-1/2 altermagnetic Mott insulating ground states at fillings of two and four electrons per unit cell.</p>
<p>The characteristic spin splitting appears in both electronic and magnon spectra. Upon electron or hole doping, the model also supports altermagnetic metallic behavior with quasi-one-dimensional Fermi surfaces and <i>d</i><sub>x²−y²</sub>-wave spin splitting.</p>
<div class="paper-links">
<a href="https://journals.aps.org/prl/abstract/10.1103/s31h-hk2v" target="_blank" rel="noopener">Phys. Rev. Lett. 135, 156502 <span aria-hidden="true">↗</span></a>
</div>
</div>
<div class="research-gallery two-up">
<figure>
<img src="images/Research/AltermagnetismLieb_1.png" alt="Momentum-space spin splitting and effective-chain picture for the doped modified Lieb lattice" loading="lazy">
<figcaption>Spin-split Fermi surface and the effective-chain description.</figcaption>
</figure>
<figure>
<img src="images/Research/AltermagnetismLieb_2.png" alt="Calculated dynamical spin structure factors for two sublattices of the modified Lieb lattice" loading="lazy">
<figcaption>Sublattice-resolved magnon spectra reveal altermagnetic splitting.</figcaption>
</figure>
</div>
</article>
<article class="research-card text-card">
<div class="card-heading">
<span class="topic-number">03</span>
<div>
<p class="topic-tag">Spin-orbit coupling · Excitonic phases</p>
<h3>Magnetic Excitonic Insulators</h3>
</div>
</div>
<div class="card-copy columns">
<p>Using DMRG and unrestricted Hartree–Fock, we established antiferromagnetism driven by spin-orbit exciton condensation at momentum π in multi-orbital Hubbard models motivated by 4d/5d transition-metal oxides.</p>
<p>Follow-up dynamical DMRG and exact-diagonalization studies revealed a multi-branch optical mode alongside a low-energy Goldstone-like mode—an experimental fingerprint for candidate excitonic materials.</p>
</div>
<div class="paper-links">
<a href="https://journals.aps.org/prb/abstract/10.1103/PhysRevB.101.245147" target="_blank" rel="noopener">Phys. Rev. B 101, 245147 <span aria-hidden="true">↗</span></a>
<a href="https://journals.aps.org/prb/abstract/10.1103/PhysRevB.104.235135" target="_blank" rel="noopener">Phys. Rev. B 104, 235135 <span aria-hidden="true">↗</span></a>
</div>
</article>
<h2 class="research-direction">Moiré Materials</h2>
<article class="research-card text-card">
<div class="card-heading">
<span class="topic-number">04</span>
<div>
<p class="topic-tag">Moiré materials · Wigner crystallization</p>
<h3>Generalized Wigner Crystals and Mott states in Twisted TMDs</h3>
</div>
</div>
<div class="card-copy columns">
<p>We studied moiré Hubbard physics in Γ-valley twisted TMD homobilayers—MoS<sub>2</sub>, MoSe<sub>2</sub>, and WS<sub>2</sub>—where honeycomb moiré bands host strong correlation effects. We predicted a sequence of generalized Wigner crystals at fractional fillings using unrestricted Hartree–Fock.</p>
<p>These predictions were later supported by experiments on twisted MoSe<sub>2</sub> bilayers. In complementary work, we derived a moiré Kanamori–Hubbard model through Wannierization of composite low-energy bands.</p>
</div>
<div class="paper-links">
<a href="https://www.nature.com/articles/s42005-022-01065-0" target="_blank" rel="noopener">Commun. Phys. 5, 289 <span aria-hidden="true">↗</span></a>
<a href="https://journals.aps.org/prb/abstract/10.1103/PhysRevB.107.L201118" target="_blank" rel="noopener">Phys. Rev. B 107, L201118 <span aria-hidden="true">↗</span></a>
<a href="https://www.nature.com/articles/s41467-026-76783-y" target="_blank" rel="noopener">Nature Communications (2026) <span aria-hidden="true">↗</span></a>
</div>
<div class="research-gallery">
<figure>
<img src="images/Research/Moire_MoSe2Twisted.png" alt="Twisted MoSe2 bilayer structure with high-symmetry stacking regions and the resulting moiré potential" loading="lazy">
<figcaption>Twisted MoSe<sub>2</sub> lattice and the emergent moiré potential.</figcaption>
</figure>
</div>
</article>
<h2 class="research-direction">Quantum Simulation & Annealing/Computation</h2>
<article class="research-card text-card">
<div class="card-heading">
<span class="topic-number">05</span>
<div>
<p class="topic-tag">Quantum simulation · Non-equilibrium dynamics</p>
<h3>Quantum Computation via Quantum Annealing</h3>
</div>
</div>
<div class="card-copy columns">
<p>In collaboration with D-Wave Systems, we use coherent quantum annealing to simulate non-equilibrium magnetic dynamics near quantum critical points across several spin models, including higher-dimensional spin glasses.</p>
<p>Benchmarks against tensor-network and neural-network approaches reveal area-law entanglement trends and regimes where classical computational cost rises rapidly, positioning quantum annealers as promising tools for difficult quantum dynamics.</p>
</div>
<div class="paper-links">
<a href="https://www.science.org/doi/10.1126/science.adi8440" target="_blank" rel="noopener">Science 388, 199–204 <span aria-hidden="true">↗</span></a>
<a href="https://www.nature.com/articles/s41534-025-00900-w" target="_blank" rel="noopener">npj Quantum Information 11, 38 <span aria-hidden="true">↗</span></a>
</div>
</article>
</section>
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<p>© 2026 Nitin Kaushal</p>
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