We fabricated all solid-state PbS-sensitized solar cells by the repeated step-by-step spin-coating of Pb(NO3)(2), Na2S, and ethanedithiol (EDT) solution on mesoporous TiO2 (mp-TiO2) films. Incorporating EDT molecules into the PbS nanoparticles during the spin-assisted successive ionic layer adsorption and reaction (SILAR) process greatly improved the stability of the device in air and its efficiency owing to the improved charge injection and surface passivation because the EDT molecules prevent the overgrowth and oxidation of the PbS nanoparticles during the layer-by-layer coating of the EDT molecules. (C) 2012 Elsevier B.V. All rights reservedclose1
This thesis describes several alternative routes to facilitate charge extraction from PbS nanocrysta...
We report on the fabrication of PbS-CdS (core-shell) quantum dot (QD)-sensitized solar cells by dire...
Thanks to their broadly tunable bandgap and strong absorption, colloidal lead chalcogenide quantum d...
Despite the potential of PbS quantum dots (QDs) as sensitizers for quantum-dot-sensitized solar cell...
A PbS-sensitized photovoltaic photodetector responsive to near-infrared (NIR) light was fabricated b...
Narrow bandgap PbS nanoparticles, which may expand the light absorption range to the near-infrared r...
We report on the fabrication of PbS/CH3NH3PbI3 (=MAP) core/shell quantum dot (QD)sensitized inorgani...
The use of narrow band gap semiconductors such as PbS may expand the light absorption range to the n...
We report on the fabrication of PbS/CH<sub>3</sub>NH<sub>3</sub>PbI<sub>3</sub> (=MAP) core/shell qu...
Using a dimensionally engineered nano film of lead sulphide (PbS) above/below the methyl ammonium le...
The use of narrow band gap semiconductors such as PbS may expand the light absorption range to the n...
We report on heteroepitaxial growth of nearly monodisperse PbS nanocrystals onto the surface of TiO2...
Herein, we report on the systematic engineering of the interface between the titanium oxide (TiO2) p...
A facile room temperature (27 °C) chemical route, namely successive ionic layer adsorption and react...
Thanks to their broadly tunable bandgap and strong absorption, colloidal lead chalcogenide quantum d...
This thesis describes several alternative routes to facilitate charge extraction from PbS nanocrysta...
We report on the fabrication of PbS-CdS (core-shell) quantum dot (QD)-sensitized solar cells by dire...
Thanks to their broadly tunable bandgap and strong absorption, colloidal lead chalcogenide quantum d...
Despite the potential of PbS quantum dots (QDs) as sensitizers for quantum-dot-sensitized solar cell...
A PbS-sensitized photovoltaic photodetector responsive to near-infrared (NIR) light was fabricated b...
Narrow bandgap PbS nanoparticles, which may expand the light absorption range to the near-infrared r...
We report on the fabrication of PbS/CH3NH3PbI3 (=MAP) core/shell quantum dot (QD)sensitized inorgani...
The use of narrow band gap semiconductors such as PbS may expand the light absorption range to the n...
We report on the fabrication of PbS/CH<sub>3</sub>NH<sub>3</sub>PbI<sub>3</sub> (=MAP) core/shell qu...
Using a dimensionally engineered nano film of lead sulphide (PbS) above/below the methyl ammonium le...
The use of narrow band gap semiconductors such as PbS may expand the light absorption range to the n...
We report on heteroepitaxial growth of nearly monodisperse PbS nanocrystals onto the surface of TiO2...
Herein, we report on the systematic engineering of the interface between the titanium oxide (TiO2) p...
A facile room temperature (27 °C) chemical route, namely successive ionic layer adsorption and react...
Thanks to their broadly tunable bandgap and strong absorption, colloidal lead chalcogenide quantum d...
This thesis describes several alternative routes to facilitate charge extraction from PbS nanocrysta...
We report on the fabrication of PbS-CdS (core-shell) quantum dot (QD)-sensitized solar cells by dire...
Thanks to their broadly tunable bandgap and strong absorption, colloidal lead chalcogenide quantum d...