We investigated the effect of PbSe quantum dot size on the performance of Schottky solar cells made in an ITO/PEDOT/PbSe/aluminum structure, varying the PbSe nanoparticle diameter from 1 to 3 nm. In this highly confined regime, we find that the larger particle bandgap can lead to higher open-circuit voltages (~0.6 V), and thus an increase in overall efficiency compared to previously reported devices of this structure. To carry out this study, we modified existing synthesis methods to obtain ultrasmall PbSe nanocrystals with diameters as small as 1 nm, where the nanocrystal size is controlled by adjusting the growth temperature. As expected, we find that photocurrent decreases with size due to reduced absorption and increased recombination, ...
This thesis studies lead suphide (PbS) colloidal quantum dots and their photovoltaic applications. D...
Semiconducting thin films made from nanocrystals hold potential as composite hybrid materials with n...
This thesis describes the optical and electrical properties of colloidal PbS nanocrystals synthesize...
Small-sized PbSe nanocrystals (NCs) were syn-thesized at low temperature such as 50 1280 \ub0C with ...
Given a rapidly developing world, the need exists for inexpensive renewable energy alternatives to h...
Lead chalcogenides with large exciton Bohr radius display strong quantum confinement, which make the...
We report on the fabrication of efficient PbS solar cells, showing power conversion efficiencies app...
Semiconductor nanocrystals are promising for use in cheap and highly efficient solar cells. A high e...
Multiple exciton generation (MEG) in PbSe quantum dots (QDs) opens up new opportunities to improve s...
We report the design, fabrication, and characterization of colloidal PbSe nanocrystal (NC)-based pho...
PbSe colloidal quantum dots (CQDs) possess the advantages of efficient multiple exciton generation (...
Lead sulfide quantum dots (PbS QDs) show great potential for efficient, low cost photovoltaic applic...
We determine the internal quantum efficiency (IQE) of the active layer of PbSe nanocrystal (NC) back...
This thesis focuses on the device physics of PbS QDs in electronic devices and the fabrication and o...
This thesis studies lead suphide (PbS) colloidal quantum dots and their photovoltaic applications. D...
Semiconducting thin films made from nanocrystals hold potential as composite hybrid materials with n...
This thesis describes the optical and electrical properties of colloidal PbS nanocrystals synthesize...
Small-sized PbSe nanocrystals (NCs) were syn-thesized at low temperature such as 50 1280 \ub0C with ...
Given a rapidly developing world, the need exists for inexpensive renewable energy alternatives to h...
Lead chalcogenides with large exciton Bohr radius display strong quantum confinement, which make the...
We report on the fabrication of efficient PbS solar cells, showing power conversion efficiencies app...
Semiconductor nanocrystals are promising for use in cheap and highly efficient solar cells. A high e...
Multiple exciton generation (MEG) in PbSe quantum dots (QDs) opens up new opportunities to improve s...
We report the design, fabrication, and characterization of colloidal PbSe nanocrystal (NC)-based pho...
PbSe colloidal quantum dots (CQDs) possess the advantages of efficient multiple exciton generation (...
Lead sulfide quantum dots (PbS QDs) show great potential for efficient, low cost photovoltaic applic...
We determine the internal quantum efficiency (IQE) of the active layer of PbSe nanocrystal (NC) back...
This thesis focuses on the device physics of PbS QDs in electronic devices and the fabrication and o...
This thesis studies lead suphide (PbS) colloidal quantum dots and their photovoltaic applications. D...
Semiconducting thin films made from nanocrystals hold potential as composite hybrid materials with n...
This thesis describes the optical and electrical properties of colloidal PbS nanocrystals synthesize...