Kishori Deshpande
Dow Chemical Company
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Publication
Featured researches published by Kishori Deshpande.
Nature Communications | 2014
Nuri Oh; Sooji Nam; You Zhai; Kishori Deshpande; Pete Trefonas; Moonsub Shim
As semiconductor heterostructures play critical roles in todays electronics and optoelectronics, the introduction of active heterojunctions can impart new and improved capabilities that will enable the use of solution-processable colloidal quantum dots in future devices. Such heterojunctions incorporated into colloidal nanorods may be especially promising, since the inherent shape anisotropy can provide additional benefits of directionality and accessibility in band structure engineering and assembly. Here we develop double-heterojunction nanorods where two distinct semiconductor materials with type II staggered band offset are both in contact with one smaller band gap material. The double heterojunction can provide independent control over the electron and hole injection/extraction processes while maintaining high photoluminescence yields. Light-emitting diodes utilizing double-heterojunction nanorods as the electroluminescent layer are demonstrated with low threshold voltage, narrow bandwidth and high efficiencies.
ACS Nano | 2016
Bong Hoon Kim; Sooji Nam; Nuri Oh; Seong Yong Cho; Ki Jun Yu; Chi Hwan Lee; Jieqian Zhang; Kishori Deshpande; Peter Trefonas; Jae Hwan Kim; Jungyup Lee; Jae Ho Shin; Yongjoon Yu; Jong Bin Lim; Sang M. Won; Youn Kyoung Cho; Nam Heon Kim; Kyung Jin Seo; Heenam Lee; Tae-Il Kim; Moonsub Shim; John A. Rogers
Here, we report multilayer stacking of films of quantum dots (QDs) for the purpose of tailoring the energy band alignment between charge transport layers and light emitting layers of different color in quantum dot light-emitting diodes (QD LED) for maximum efficiency in full color operation. The performance of QD LEDs formed by transfer printing compares favorably to that of conventional devices fabricated by spin-casting. Results indicate that zinc oxide (ZnO) and titanium dioxide (TiO2) can serve effectively as electron transport layers (ETLs) for red and green/blue QD LEDs, respectively. Optimized selections for each QD layer can be assembled at high yields by transfer printing with sacrificial fluoropolymer thin films to provide low energy surfaces for release, thereby allowing shared common layers for hole injection (HIL) and hole transport (HTL), along with customized ETLs. This strategy allows cointegration of devices with heterogeneous energy band diagrams, in a parallelized scheme that offers potential for high throughput and practical use.
Nanoscale | 2015
Matt S. Naughton; Vivek Kumar; Yolanda Bonita; Kishori Deshpande; Paul J. A. Kenis
Continuous flow reactors show great promise for large-scale synthesis of quantum dots. Here, we discuss results for the synthesis of multi-layered Cd-based hybrid nanocrystals - CdSe/CdS/ZnS, CdS/ZnS, and CdSeS/ZnS - in a continuous flow reactor. The simple reactor design and liquid-phase chemistry obviate the need for preheating or in-line mixing, and the chosen reactor dimensions and operating conditions allow for high flow rates (∼10 mL min(-1)). Additionally, the simple reactor design is well suited for scale-up. The CdSe/CdS/ZnS particles synthesized at elevated temperatures in the reactor exhibit quantum yields of over 60% at longer wavelengths (red region). The shell growth for these particles is conducted without the need for complex dropwise addition or SILAR shell growth procedures used in batch reactors. CdS-based particles were shown to have a higher performance when using octadecene-S instead of TOP-S, which improved the quality of shell growth. In addition, stoichiometric synthesis of the alternate CdSeS/ZnS alloy particles was conducted, removing the need for a large excess of S to offset the lower S reactivity. CdSeS/ZnS alloy nanoparticles exhibit quantum yields of about 50% in the intermediate wavelength range (500-600 nm).
conference on lasers and electro optics | 2015
Gloria G. See; Lu Xu; Matt S. Naughton; Tiantian Tang; Yolanda Bonita; Jake Joo; Peter Trefonas; Kishori Deshpande; Paul J. A. Kenis; Ralph G. Nuzzo; Brian T. Cunningham
We demonstrate an approach in which visible-wavelength-emitting quantum dots (QDs) are integrated within a polymer-based photonic crystal (PC) and excited by an ultraviolet-emitting LED. The PC design incorporates two interleaved regions, each with distinct periods in orthogonal directions to enable simultaneous resonant coupling of ultraviolet excitation photons to the QDs and visible QD emission at two different wavelengths to efficiently extract photons normal to the PC surface. The combined excitation and extraction enhancements result in a 5.8X increase in the QD output intensity. Further, we demonstrate multiple QD-doped PCs combined on a single surface to optimally couple with distinct populations of QDs, offering a means for blending color output and directionality of multiple wavelengths.
Archive | 2011
Kishori Deshpande; Serena Stephenson; Ravindra S. Dixit
ChemNanoMat | 2017
Vivek Kumar; Héctor A. Fustér; Nuri Oh; You Zhai; Kishori Deshpande; Moonsub Shim; Paul J. A. Kenis
Archive | 2015
Brian T. Cunningham; Gloria G. See; Peter Trefonas; Jong Keun Park; Kishori Deshpande; Jieqian Zhang; Jaebum Joo
Archive | 2013
Moonsub Shim; Nuri Oh; You Zhai; Sooji Nam; Peter Trefonas; Kishori Deshpande; Jake Joo
Macromolecular Reaction Engineering | 2017
Brenda Thies Colegrove; Kishori Deshpande; Rich Harner; Liane Mikolajczyk; Serena Stephenson; J. D. Tate; John W. Weston
ChemNanoMat | 2018
Ajit Vikram; Vivek Kumar; Utkarsh Ramesh; Karthik Balakrishnan; Nuri Oh; Kishori Deshpande; Trevor Ewers; Peter Trefonas; Moonsub Shim; Paul J. A. Kenis