A fiber integrated N-V diamond magnetometer compatible with commercial endoscopic systems
Satbir Singh, Hyunjong Lee, Nhu Anh Nguyen, Seonghyeon Kang, Jeong Hyun Shim, Sangwon Oh, Kwang-Geol Lee

TL;DR
This paper introduces a compact, fiber-integrated N-V diamond magnetometer compatible with commercial endoscopes, enabling magnetic field measurements in inaccessible regions with high sensitivity and stability.
Contribution
It presents a novel endoscopic design integrating a large-core fiber and N-V diamond for magnetic sensing, enhancing portability and potential clinical applications.
Findings
Achieved a magnetic field sensitivity of ~3 nT/Hz$^{1/2}$
Endoscope diameter limited to 10 mm for compatibility
Sensitivity improved to 0.85 nT/Hz$^{1/2}$ with external magnet placement
Abstract
Nitrogen-vacancy (N-V) center in diamond provides a robust, solid-state platform for magnetic field measurements at room temperature. To harness its potential in inspecting inaccessible regions, here we present a compact endoscopic configuration of an N-V diamond-based magnetometer. The endoscopic magnetometer was developed by integrating a large-core optical fiber with a bulk N-V diamond for laser excitation and photoluminescence (PL) collection. The diamond and fiber were specially shaped to enhance PL collection through the fiber. Additionally, a 3D-printed endoscope head was employed to facilitate alignment of the bias magnetic field along the N-V axis. A magnetic field sensitivity of approximately 3 nT/Hz was achieved by using cw-magnetometry measurements. The endoscope diameter was restricted to 10 mm to match the dimensions of most commercial endoscopes. The magnetic…
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Taxonomy
TopicsDiamond and Carbon-based Materials Research · Atomic and Subatomic Physics Research · Magnetic properties of thin films
