Possibility of Using the Piezoceramic PZT-19 in Pyroelectric X-Ray Generators


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Abstract

The possibility of using PZT-19 ceramic in a pyroelectric x-ray generator is investigated experimentally. Measurements of the x-ray spectra showed the possibility of obtaining on a ceramic surface in vacuum potentials up to 7 kV, which is very low compared with typical similar values for pyroelectric crystals of lithium niobate and tantalate. This feature is due to the significant permittivity of the ceramic. It is shown that the main criterion for picking a ceramic for a pyroelectric x-ray generation could be the maximum value of the ratio of the pyroelectric constant to the permittivity.

About the authors

A. V. Shchagin

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University; National Scientific Center – Khar’kov Physico-technical Institute

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod; Khar’kov

K. A. Vokhmyanina

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

O. O. Ivashchuk

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

V. Yu. Ionidi

D. V. Skobel’tsyn Scientific-Research Institute of Nuclear Physics, Moscow State University

Email: kubankin@bsu.edu.ru
Russian Federation, Moscow

A. A. Kaplii

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

I. A. Kishchin

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University; P. N. Lebedev Physical Institute, Russian Academy of Sciences

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod; Moscow

A. S. Klyuev

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

A. S. Kubankin

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University; P. N. Lebedev Physical Institute, Russian Academy of Sciences

Author for correspondence.
Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod; Moscow

M. V. Mishunin

P. N. Lebedev Physical Institute, Russian Academy of Sciences

Email: kubankin@bsu.edu.ru
Russian Federation, Moscow

R. M. Nazhmudinov

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University; P. N. Lebedev Physical Institute, Russian Academy of Sciences

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod; Moscow

I. S. Nikulin

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

A. N. Oleinik

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

A. V. Sotnikov

International Scientific and Educational Laboratory of Radiation Physics, Belgorod State University

Email: kubankin@bsu.edu.ru
Russian Federation, Belgorod

A. S. Chepurnov

D. V. Skobel’tsyn Scientific-Research Institute of Nuclear Physics, Moscow State University

Email: kubankin@bsu.edu.ru
Russian Federation, Moscow

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