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Tia Pandit

Publications and source records attributed to Tia Pandit.

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Matter-Induced CPT Violation and Earth-Density Stratification Effects in Long-Baseline Neutrino Oscillation Experiments

We present a unified analysis of two matter-potential systematics in long-baseline (LBL) neutrino oscillation experiments, treating matter-induced extrinsic CPT violation and Earth density stratification as correlated systematics within a single $\chi^2$ framework. We study their joint impact on CP-phase reconstruction and mass-ordering dependence. Matter-induced extrinsic CPT violation produces a non-zero asymmetry $A_{\mu e}^{\rm CPT}=(P_{\mu e}-\bar P_{\mu e})/(P_{\mu e}+\bar P_{\mu e})$, computed using exact three-flavour matrix exponentiation for T2K, NO$\nu$A, DUNE, and Hyper-Kamiokande. The asymmetry ranges from 0.022 to 0.180 at the respective peak energies and differs by up to $9\%$ between normal and inverted orderings. The surface $A_{\mu e}^{\rm CPT}(E,\delta_{\rm CP})$ at DUNE reveals an interplay between extrinsic CPT and intrinsic CP violation in the high-$L/E$ regime requiring joint statistical treatment. We quantify the sensitivity of $A_{\mu e}^{\rm CPT}$ to density uncertainties $\rho\rightarrow\rho(1+\varepsilon)$ with $\varepsilon=\pm1\%,\pm2\%,\pm5\%$, finding that a $\pm5\%$ uncertainty induces $|\Delta A_{\rm CPT}|<0.008$ at DUNE. Replacing the PREM profile with a constant path-averaged density yields a $\delta_{\rm CP}$ reconstruction bias below $0.3^\circ$ for $L\le5000$ km, increasing to $17.8^\circ$ at $7000$ km and $172.2^\circ$ at $12000$ km. Since both effects arise from the same matter Hamiltonian, they must be modelled jointly using a Poisson log-likelihood $\chi^2$ with nuisance-parameter pulls.

hep-ph

Correlated Matter Induced Biases in Long-Baseline Neutrino Oscillation Measurements

We demonstrate that treating Earth matter effects via a constant-density approximation introduces a fundamental systematic error in long-baseline neutrino oscillation analyses. Using exact numerical propagation through realistic PREM profiles, we show that matter-profile mismodeling does not merely affect the $\nu_{\mu}\rightarrow\nu_{e}$ appearance probability, but generates correlated biases across the $\nu_{\mu}\rightarrow\nu_{\tau}$ and $\nu_{\mu}\rightarrow\nu_{\mu}$ channels as dictated by PMNS unitarity. Our stochastic analysis reveals that the $\nu_{\mu}\rightarrow\nu_{\tau}$ channel is the most volatile carrier of the geophysical systematic. Across varying correlation lengths at baselines like $5000$ km and $7000$ km, the $\tau$-appearance channel consistently carries a larger mean bias and variance than the standard $\nu_{\mu}\rightarrow\nu_{e}$ appearance channel. These findings demonstrate that spatially resolved density treatments are a mathematical necessity for the analysis frameworks of future precision neutrino facilities.

hep-ph

Earth-Density Effects in Long Baseline Neutrino Experiments

Earth matter density uncertainties play a non trivial role in three flavor neutrino oscillations in matter, particularly for the muon to electron appearance channel that underpins CP violation measurements in long baseline experiments. We demonstrate that when realistic spatial variations of the Earths density are taken into account, the oscillation probabilities acquire additional, energy dependent structures that cannot be captured by path-averaged density approximations. We show that mismodeling of the matter density profile can introduce degeneracies that obscure genuine leptonic CP violating effects, thereby degrading parameter sensitivity and biasing the inference of the CP phase. Identifying energy regions in which CP sensitivity remains robust against matter density uncertainties is therefore essential. These considerations indicate that marginalization over a single effective density parameter is insufficient for next generation precision measurements and motivate the incorporation of spatially resolved Earth density profiles in the analysis frameworks of future long-baseline neutrino oscillation experiments.

hep-ph