Research Article

Raman Spectroscopy and X-ray Diffraction Analysis of Pressure-Induced Phase Transitions in Hexagonal Boron Nitride Nanosheets Under Hydrostatic Compression

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SciMatic J Appl Phys Mater Sci, 2026, 1 (1), 44-50, ISSN

Abstract

Hexagonal boron nitride (h-BN) nanosheets exhibit remarkable mechanical resilience, chemical inertness, and thermal stability, making them quintessential two-dimensional dielectric materials. In this study, we investigate the structural stability and pressure-induced phase transformations of high-purity, few-layer h-BN nanosheets under quasi-hydrostatic compression up to 35.2 GPa using a symmetric diamond anvil cell (DAC) coupled with in situ synchrotron angle-dispersive X-ray diffraction (XRD) and high-resolution micro-Raman spectroscopy. At ambient conditions, the nanosheets exhibit the characteristic intra-layer E2g optical phonon mode at 1366.2 cm⁻¹. Under hydrostatic compression, this mode undergoes a continuous blueshift with a pressure coefficient of 4.12 cm⁻¹/GPa up to approximately 12.8 GPa. Beyond this critical pressure, a pronounced peak broadening, intensity attenuation, and the emergence of a broad shoulder near 1280 cm⁻¹ signify the onset of an sp²-to-sp³ hybridization transition. In situ synchrotron XRD patterns corroborate this transition, showing the rapid collapse of the interlayer c-axis lattice parameter and the appearance of diffraction peaks indexable to a wurtzite-like boron nitride (w-BN) phase above 13.4 GPa. Fitting the pressure-volume data to a third-order Birch-Murnaghan equation of state yields an ambient bulk modulus of B₀ = 34.6 ± 1.8 GPa with B₀' = 6.4 for the low-pressure h-BN phase. Upon decompression, a marked structural hysteresis is observed, retaining metastable sp³-bonded domains at ambient conditions. These findings elucidate the role of dimensional confinement in lowering the kinetic barriers of phase transitions in two-dimensional group-III nitrides.

Keywords Raman Spectroscopy hexagonal boron nitride High-pressure phase transition Diamond anvil cell Synchrotron X-ray diffraction
Authors 3

The team behind this paper

3 authors, 3 institutions.

This paper Tokyo Institute of Technology — Japan Tokyo Institute of Tech… 1 author Dresden University of Technology — Germany Dresden University of T… 1 author Kwame Nkrumah University of Science and Technology — Ghana Kwame Nkrumah Universit… 1 author Prof. Hiroshi Tanaka — corresponding author HT Prof. Hiroshi Tanaka ✉ Dr. Elena Rostova ER Dr. Elena Rostova Prof. Kwame Asante KA Prof. Kwame Asante

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Bibliographic Information

Prof. Hiroshi Tanaka, Dr. Elena Rostova, Prof. Kwame Asante, (2026). Raman Spectroscopy and X-ray Diffraction Analysis of Pressure-Induced Phase Transitions in Hexagonal Boron Nitride Nanosheets Under Hydrostatic Compression, SciMatic Journal of Applied Physics and Materials Science, 1(1): 44-50
Bibtex Citation
@article{prof._hiroshi_tanaka2026sjapms,
author = {Prof. Hiroshi Tanaka and Dr. Elena Rostova and Prof. Kwame Asante},
title = {Raman Spectroscopy and X-ray Diffraction Analysis of Pressure-Induced Phase Transitions in Hexagonal Boron Nitride Nanosheets Under Hydrostatic Compression},
journal = {SciMatic Journal of Applied Physics and Materials Science},
year = {2026},
volume = {1},
number = {1},
pages = {44-50},
doi = {},
url = {https://scimatic.org/index.php/show_manuscript/9712}
}
APA Citation
Tanaka, P.H., Rostova, D.E., Asante, P.K., (2026). Raman Spectroscopy and X-ray Diffraction Analysis of Pressure-Induced Phase Transitions in Hexagonal Boron Nitride Nanosheets Under Hydrostatic Compression. SciMatic Journal of Applied Physics and Materials Science, 1(1), 44-50. https://doi.org/

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