Beyond the Energy Gap Law: The Influence of Selection Rules and Host Compound Effects on Nonradiative Transition Rates in Boltzmann Thermometers

Publication date

2022-04-07

Authors

Netzsch, Philip
Hämmer, Matthias
Turgunbajew, Erich
van Swieten, T.P.ISNI 0000000492798266
Meijerink, AISNI 000000039216731X
Höppe, Henning A.
Suta, MarkusISNI 0000000492926467

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Document Type

Article
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cc_by_nc_nd

Abstract

Apart from the energy gap law, control parameters over nonradiative transitions are so far only scarcely regarded. In this work, the impact of both covalence of the lanthanoid–ligand bond and varying bond distance on the magnitude of the intrinsic nonradiative decay rate between the excited 6P5/2 and 6P7/2 spin–orbit levels of Gd3+ is investigated in the chemically related compounds Y2[B2(SO4)6] and LaBO3. Analysis of the temperature-dependent luminescence spectra reveals that the intrinsic nonradiative transition rates between the excited 6PJ (J = 5/2, 7/2) levels are of the order of only 10 ms−1 (Y2[B2(SO4)6]:Gd3+: 8.9 ms−1; LaBO3:Gd3+: 10.5 ms−1) and differ due to the different degree of covalence of the Gd-O bonds in the two compounds. Comparison to the established luminescent Boltzmann thermometer Er3+ reveals, however, that the nonradiative transition rates between the excited levels of Gd3+ are over three orders of magnitude slower despite a similar energy gap and the presence of a single resonant phonon mode. This hints to a fundamental magnetic dipolar character of the nonradiative coupling in Gd3+. These findings can pave a way to control nonradiative transition rates and how to tune the dynamic range of luminescent Boltzmann thermometers.

Keywords

borates, borosulfates, Gd, luminescence thermometry, nonradiative transitions, structure–property relationship, Electronic, Optical and Magnetic Materials, Atomic and Molecular Physics, and Optics

Citation

Netzsch, P, Hämmer, M, Turgunbajew, E, van Swieten, T P, Meijerink, A, Höppe, H A & Suta, M 2022, 'Beyond the Energy Gap Law : The Influence of Selection Rules and Host Compound Effects on Nonradiative Transition Rates in Boltzmann Thermometers', Advanced Optical Materials, vol. 10, no. 11, 2200059. https://doi.org/10.1002/adom.202200059