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Non-contact luminescence lifetime cryothermometry for macromolecular crystallography

2017/03/07 by Vitaliy Mykhaylyk, V. Mykhaylyk A. Wagner, Armin Wagner +1 · 1 citation
Chemistry · Engineering · Materials Science · Physics and Astronomy · #Analytical Chemistry (journal) #Atmospheric temperature range #Beam (structure) #Beamline #Calibration and Measurement Techniques #Chemistry #Crystal (programming language) #Detector #Luminescence #Materials science #Optics #Optoelectronics #Photodetector #Physics #Responsivity #Scintillation #Scintillator #Thermal properties of materials #physics.ins-det #thermodynamics and calorimetric analyses

paper · pdf · doi:10.1107/s1600577517003484

accepted by Journal of Synchrotron Radiation

arxiv created 2017/03/07 · openalex publication_date 2017/04/04 · arxiv updated 2017/05/16 · openalex created_date 2020/11/23 · openalex updated_date 2026/08/05

Abstract

A novel technique for remote, non-contact, in situ monitoring of the protein crystal temperature has been developed for the new I23 beamline at the Diamond Light Source, a facility dedicated to macromolecular crystallography (MX) with long-wavelength X-rays. The temperature is derived from the temperature-dependant decay time constant of luminescence from a minuscule scintillation sensor (0.05 mm3) located in very close proximity to the sample under test. In this work we present the underlying principle of cryogenic luminescence lifetime thermometry, discuss the features of the detection method, the choice of temperature sensor and demonstrate how the temperature monitoring system was integrated within the viewing system of the end-station used for the visualisation of protein crystals. The thermometry system was characterised using a Bi4Ge3O12 (BGO) crystal scintillator that exhibits good responsivity of the decay time constant as function of temperature over a wide range (8-270 K). The scintillation sensor was calibrated and the uncertainty of the temperature measurements over the primary operation temperature range of the beamline (30-150 K) was assessed to be +-1.6 K. It has been shown that the temperature of the sample holder, measured using the luminescence sensor, agrees well with the expected value. The technique was applied to characterise the thermal performance of different sample mounts that have been used in MX experiments at the I23 beamline. The thickness of the mount is shown to have the greatest impact upon the temperature distribution across the sample mount. Altogether these tests and findings demonstrate the usefulness of the thermometry system in highlighting the challenges that remain to be addressed for the in-vacuum MX experiment to become a reliable and indispensable tool for structural biology

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