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Analysis

This paper presents a novel application of Electrostatic Force Microscopy (EFM) to characterize defects in aluminum oxide, a crucial material in quantum computing. The ability to identify and map these defects at the atomic scale is a significant advancement, as these defects contribute to charge noise and limit qubit coherence. The use of cryogenic EFM and the integration with Density Functional Theory (DFT) modeling provides a powerful approach for understanding and ultimately mitigating the impact of these defects, paving the way for improved qubit performance.
Reference

These results point towards EFM as a powerful tool for exploring defect structures in solid-state qubits.

Research#Perovskites🔬 ResearchAnalyzed: Jan 10, 2026 08:00

Unveiling Perovskite Behavior: Defects, Oxygen Vacancies, and Oxidation

Published:Dec 23, 2025 18:01
1 min read
ArXiv

Analysis

This ArXiv article delves into the complex interplay of defects, oxygen vacancies, and oxidation in acceptor-doped ABO3 perovskites, contributing to fundamental materials science knowledge. The research likely offers insights into the performance and stability of these important materials.
Reference

The research focuses on acceptor-doped ABO3 perovskites.