Effect of the Type of the Crystal Phase of In2O3 On Its Conductivity and Sensor Properties in Hydrogen Detection

Capa

Citar

Texto integral

Acesso aberto Acesso aberto
Acesso é fechado Acesso está concedido
Acesso é fechado Somente assinantes

Resumo

Indium oxide is synthesized hydrothermally from an aqueous or alcoholic solution of indium nitrate. The phase composition and structure of the synthesized samples, as well as their conductivity and sensory response during the detection of hydrogen, are studied. A change in the conditions of hydrothermal synthesis leads to the formation of a metastable rhombohedral phase together with the main cubic phase of indium oxide. It is shown that an increase in the concentration of the rhombohedral phase in indium oxide leads to an increase in its conductivity and the maximum sensor activity for hydrogen.

Sobre autores

M. Ikim

Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences

Email: ikimmary1104@gmail.com
Moscow, Russia

E. Spiridonova

Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences

Email: ikimmary1104@gmail.com
Moscow, Russia

V. Gromov

Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences

Email: ikimmary1104@gmail.com
Moscow, Russia

G. Gerasimov

Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences

Email: ikimmary1104@gmail.com
Moscow, Russia

L. Trakhtenberg

Semenov Federal Research Center for Chemical Physics, Russian Academy of Sciences; Moscow State University

Autor responsável pela correspondência
Email: ikimmary1104@gmail.com
Moscow, Russia; Moscow, Russia

Bibliografia

  1. Krishna K.G., Parne S., Pothukanuri N. et al. // Sens. Actuators A. 2022. V. 341. P. 113578.
  2. Герасимов Г.Н., Громов В.Ф., Иким М.И., Трахтенберг Л.И. // Хим. физика. 2021. Т. 40. № 11. С. 65.
  3. Gerasimov G.N., Gromov V.F., Ilegbusi O.J., Trakhtenberg L.I. // Sens. Actuators, B. 2017. V. 240. P. 613.
  4. Курмангалеев К.С., Кожушнер М.А., Трахтенберг Л.И. // Хим. физика. 2020. Т. 39. № 11. С. 89.
  5. Иким М.И., Спиридонова Е.Ю., Громов В.Ф., Герасимов Г.Н., Трахтенберг Л.И. // Хим. физика. 2022. Т. 41. № 12. С. 79.
  6. Иким М.И., Спиридонова Е.Ю., Громов В.Ф., Герасимов Г.Н., Трахтенберг Л.И. // Хим. физика. 2023. Т. 42. № . С.
  7. Sui N., Cao S., Zhang P., Zhou T., Zhang T. // J. Hazard. Mater. 2021. V. 418. P. 126 290.
  8. Song P.-Y., Zhang W.-D. // Mater. Res. Bulletin. 2014. V. 53. P. 177.
  9. Громов В.Ф., Иким М.И., Герасимов Г.Н., Трахтенберг Л.И. // Хим. физика. 2021. Т. 40. № 12. С. 76.
  10. Song L., Dou K., Wang R. et al. //ACS Appl. Mater. Interfaces. 2020. V. 12. P. 1270.
  11. Gerasimov G.N., Ikim M.I., Gromov V.F., Ilegbusi O.J., Trakhtenberg L.I. // J. Alloys Compd. 2021. V. 883. P. 160 817.

Arquivos suplementares

Arquivos suplementares
Ação
1. JATS XML
2.

Baixar (147KB)

Declaração de direitos autorais © М.И. Иким, Е.Ю. Спиридонова, В.Ф. Громов, Г.Н. Герасимов, Л.И. Трахтенберг, 2023