Effects of Fermi surface and superconducting gap structure in the field-rotational experiments: A possible explanation of the cusp-like singularity in YNi$_2$B$_2$C
Masafumi Udagawa, Youichi Yanase, and Masao Ogata

TL;DR
This study analyzes how Fermi surface and gap structures influence field-orientational zero-energy density of states in superconductors, providing insights into cusp-like singularities in YNi$_2$B$_2$C.
Contribution
It introduces an analytical approach to evaluate FODOS considering Fermi surface and gap anisotropies, explaining cusp-like features in YNi$_2$B$_2$C.
Findings
Existence of a crossover magnetic field H* affecting ZEDOS behavior.
FODOS shape and H* are influenced by small Fermi surface regions with specific Fermi velocities.
In-plane Fermi surface anisotropy can override Doppler-shift effects, especially in multi-band systems.
Abstract
We have studied the field-orientational dependence of zero-energy density of states (FODOS) for a series of systems with different Fermi surface and superconducting gap structures. Instead of phenomenological Doppler-shift method, we use an approximate analytical solution of Eilenberger equation together with self-consistent determination of order parameter and a variational treatment of vortex lattice. First, we compare zero-energy density of states (ZEDOS) when a magnetic field is applied in the nodal direction () and in the antinodal direction (), by taking account of the field-angle dependence of order parameter. As a result, we found that there exists a crossover magnetic field so that for , while for , consistent with our previous analyses. Next, we showed that…
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