The direct optical bandgap in ferroelectric KNbO3-Bi(Yb,Me)O3 (Me = Fe or Mn) ceramics fabricated by the solid state reaction method varies from 3.2 eV for KNbO3 down to 2.2 eV for 0.95KNbO3-0.05BiYbO3, as revealed by optical spectroscopic ellipsometry. This narrowing of bandgap is accompanied by an apparent increase of the room-temperature relative permittivity from 320 for KNbO3 to 900 for 0.95KNbO3-0.05BiYbO3. All compositions studied exhibit dielectric anomalies associated with structural phase transitions, and their ferroelectric nature is corroborated by the presence of a sharp mixed mode (at ∼190 cm−1) and by a Fano-type resonant dip in their Raman spectra
Ferroelectric materials have been demonstrated to be promising in developing emerging photovoltaic t...
In-situ Raman spectroscopy shows the simultaneous incorporation of small amounts of Bi3+ and Yb3+ in...
Ba(Ni0.5Nb0.5)O2.75 (BNNO) doped KNbO3 (KN) and (K0.5Na0.5)NbO3 (KNN), abbreviated as KBNNO and KNBN...
The direct optical band gap in ferroelectric KNbO3-Bi(Yb,Me)O3 (Me=Fe or Mn) ceramics fabricated by ...
The optical bandgap of orthorhombic ferroelectric KNbO3 is shown to be continuously controllable via...
Abstract: (1 − x)KNbO3–xBiMnO3 (0 ≤ x ≤ 0.25) ceramics were prepared by the solid‐state reaction met...
The crystal structure of (1-x)KNbO3–xBiFeO3 (KNBF) and (1-x)KNbO3-LaFeO3 (KNLF) (where x=0.00; 0.01;...
This present work is focused on band-gap engineering of solid-solutions based on KNbO3, which was pr...
Ferroelectric materials have been demonstrated to be promising in developing emerging photovoltaic t...
Ferroelectric KNbO3 (KN) ceramics were first fabricated in the 1950s, however, their use in commerci...
The band gap of (1-x)KNbO3-x(Ba0.5Bi0.5)(Nb0.5Zn0.5)O3 (0≤x≤0.25) ceramics narrows slightly from 3.2...
The band gap of (1 − x)KNbO3-x(Ba0.5Bi0.5)(Nb0.5Zn0.5)O3 (0 ≤ x ≤ 0.25) ceramics narrows slightly fr...
Ferroelectric KNbO3 (KN) ceramics were first fabricated in the 1950s, however, their use in commerci...
Ferroelectric materials with engineered thus visible-range optical band gaps are increasingly resear...
Ferroelectric materials are widely used in capacitors, actuators, non-volatile memory, electro-optic...
Ferroelectric materials have been demonstrated to be promising in developing emerging photovoltaic t...
In-situ Raman spectroscopy shows the simultaneous incorporation of small amounts of Bi3+ and Yb3+ in...
Ba(Ni0.5Nb0.5)O2.75 (BNNO) doped KNbO3 (KN) and (K0.5Na0.5)NbO3 (KNN), abbreviated as KBNNO and KNBN...
The direct optical band gap in ferroelectric KNbO3-Bi(Yb,Me)O3 (Me=Fe or Mn) ceramics fabricated by ...
The optical bandgap of orthorhombic ferroelectric KNbO3 is shown to be continuously controllable via...
Abstract: (1 − x)KNbO3–xBiMnO3 (0 ≤ x ≤ 0.25) ceramics were prepared by the solid‐state reaction met...
The crystal structure of (1-x)KNbO3–xBiFeO3 (KNBF) and (1-x)KNbO3-LaFeO3 (KNLF) (where x=0.00; 0.01;...
This present work is focused on band-gap engineering of solid-solutions based on KNbO3, which was pr...
Ferroelectric materials have been demonstrated to be promising in developing emerging photovoltaic t...
Ferroelectric KNbO3 (KN) ceramics were first fabricated in the 1950s, however, their use in commerci...
The band gap of (1-x)KNbO3-x(Ba0.5Bi0.5)(Nb0.5Zn0.5)O3 (0≤x≤0.25) ceramics narrows slightly from 3.2...
The band gap of (1 − x)KNbO3-x(Ba0.5Bi0.5)(Nb0.5Zn0.5)O3 (0 ≤ x ≤ 0.25) ceramics narrows slightly fr...
Ferroelectric KNbO3 (KN) ceramics were first fabricated in the 1950s, however, their use in commerci...
Ferroelectric materials with engineered thus visible-range optical band gaps are increasingly resear...
Ferroelectric materials are widely used in capacitors, actuators, non-volatile memory, electro-optic...
Ferroelectric materials have been demonstrated to be promising in developing emerging photovoltaic t...
In-situ Raman spectroscopy shows the simultaneous incorporation of small amounts of Bi3+ and Yb3+ in...
Ba(Ni0.5Nb0.5)O2.75 (BNNO) doped KNbO3 (KN) and (K0.5Na0.5)NbO3 (KNN), abbreviated as KBNNO and KNBN...