Nova Patents
EP1530245A2

Production method of organic devices

Abstract

An organic device has a hole current-electron current conversion layer which comprises a laminate of an electron transportation section and a hole transportation section. The electron transportation section includes a charge transfer complex formed upon an oxidation-reduction reaction between a reduced low work function metal and an electron-accepting organic compound, the reduced metal being produced upon an in-situ thermal reduction reaction caused upon contact, through lamination or mixing by codeposition, of an organic metal complex compound or an inorganic compound containing at least one metal ion selected from ions of low work function metals having a work function of not more than 4.0 eV, and a thermally reducible metal capable of reducing a metal ion contained in the organic metal complex compound or the inorganic compound in vacuum to the corresponding metal state, and the electron transportation section having the electron-accepting organic compound in the state of radical anions. The hole transportation section includes an organic compound having an ionization potential of less than 5.7 eV and an electron-donating property and an inorganic or organic substance capable of forming a charge transfer complex upon its oxidation-reduction reaction with the organic compound, the organic compound and the inorganic or organic substance being contacted through lamination or mixing, and the electron-donating organic compound is in the state of radical cations.

EP1530245A2, drawing sheet 1
Sheet 1 of 41

Term

Term ended

Projected expiry passed 10 November 2024, 1.9 years ago.

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30 claims: 3 independent, 27 dependent

  1. 1
    An organic device having a hole current-electron current conversion layer which comprises a laminate of an electron transportation section and a hole transportation section,    said electron transportation section including a charge transfer complex formed upon an oxidation-reduction reaction between a reduced low work function metal and an electron-accepting organic compound, said reduced metal being produced upon an in-situ thermal reduction reaction caused upon contact, through lamination or mixing by co-deposition, of an organic metal complex compound or an inorganic compound containing at least one metal ion selected from ions of low work function metals having a work function of not more than 4.0 eV, and a thermally reducible metal capable of reducing a metal ion contained in the organic metal complex compound or the inorganic compound in vacuum to the corresponding metal state, and said electron transportation section having the electron-accepting organic compound in the state of radical anions;and    said hole transportation section includes an organic compound having an ionization potential of less than 5.7 eV and an electron-donating property and an inorganic or organic substance capable of forming a charge transfer complex upon its oxidation-reduction reaction with the organic compound, said organic compound and said inorganic or organic substance being contacted through lamination or mixing, and the electron-donating organic compound is in the state of radical cations.
  2. 2
    An organic device having a hole current-electron current conversion layer which comprises a laminate of an electron transportation section and a hole transportation section,    said electron transportation section including an organic metal complex compound or an inorganic compound containing at least one metal ion selected from ions of low work function metals having a work function of not more than 4.0 eV, and a thermally reducible metal capable of reducing a metal ion contained in the organic metal complex compound or the inorganic compound in vacuum to the corresponding metal state, upon contact, through its lamination or mixing by co-deposition, to the organic metal complex compound or inorganic compound,    wherein a charge transfer complex is formed upon an oxidation-reduction reaction between a reduced low work function metal and an electron-accepting organic compound, said reduced metal being produced upon an in-situ thermal reduction reaction caused upon said contact, and the electron-accepting organic compound is in the state of radical anions, and    wherein said hole transportation section includes an organic compound having an ionization potential of less than 5.7 eV and an electron-donating property, and an inorganic or organic substance capable of forming a charge transfer complex through its oxidation-reduction reaction with the organic compound upon contact through its lamination or mixing to said organic compound, and the electron-donating organic compound is in the state of radical cations.
  3. 30
    A process for the production of an organic device comprising the steps of:providing an in-situ thermal reduction reaction by contacting, through lamination or mixing by co-deposition, an organic metal complex compound or an inorganic compound containing at least one metal ion selected from ions of low work function metals having a work function of not more than 4.0 eV, and a thermally reducible metal capable of reducing a metal ion contained in the organic metal complex compound or the inorganic compound in vacuum to the corresponding metal state;subjecting a reduced low work function metal produced upon the in-situ thermal reduction reaction and an electron-accepting organic compound to an oxidation-reduction reaction to form a charge transfer complex, thereby forming the electron transportation section in which the electron-accepting organic compound is in the state of radical anions;and contacting, through lamination or mixing by co-deposition, an organic compound having an ionization potential of less than 5.7 eV and an electron-donating property and an inorganic or organic substance capable of forming a charge transfer complex upon its oxidation-reduction reaction with the electron-donating organic compound to form the hole transportation section in which the electron-donating organic compound is in the state of radical cations.