scholarly article | Q13442814 |
P50 | author | Yuriy Zakharko | Q43175725 |
Jana Zaumseil | Q57024751 | ||
P2093 | author name string | Martin Held | |
Stefan Thiemann | |||
Florentina Gannott | |||
Julia Schornbaum | |||
P2860 | cites work | Bright infrared quantum-dot light-emitting diodes through inter-dot spacing control | Q84074517 |
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Impact of stoichiometry on the electronic structure of PbS quantum dots | Q86849973 | ||
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Hybrid passivated colloidal quantum dot solids | Q28271998 | ||
Electron and Ambipolar Transport in Organic Field-Effect Transistors | Q30054284 | ||
High carrier densities achieved at low voltages in Ambipolar PbSe nanocrystal thin-film transistors | Q33506152 | ||
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Two types of luminescence blinking revealed by spectroelectrochemistry of single quantum dots | Q36077117 | ||
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Dependence of carrier mobility on nanocrystal size and ligand length in PbSe nanocrystal solids. | Q43425411 | ||
Light-induced charged and trap states in colloidal nanocrystals detected by variable pulse rate photoluminescence spectroscopy | Q43440590 | ||
Small bright charged colloidal quantum dots | Q44364395 | ||
A microscopic picture of surface charge trapping in semiconductor nanocrystals | Q46070286 | ||
PbSe quantum dot field-effect transistors with air-stable electron mobilities above 7 cm2 V(-1) s(-1). | Q46076121 | ||
Structural, optical, and electrical properties of self-assembled films of PbSe nanocrystals treated with 1,2-ethanedithiol | Q46126737 | ||
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Electrically switchable chiral light-emitting transistor. | Q53560941 | ||
Designing high-performance PbS and PbSe nanocrystal electronic devices through stepwise, post-synthesis, colloidal atomic layer deposition. | Q53625895 | ||
Tuning Radiative Recombination in Cu-Doped Nanocrystals via Electrochemical Control of Surface Trapping | Q57350291 | ||
Low Driving Voltage and High Mobility Ambipolar Field-Effect Transistors with PbS Colloidal Nanocrystals | Q57730200 | ||
Comparison of Carrier Multiplication Yields in PbS and PbSe Nanocrystals: The Role of Competing Energy-Loss Processes | Q58073551 | ||
n-Type Transition Metal Oxide as a Hole Extraction Layer in PbS Quantum Dot Solar Cells | Q58073601 | ||
Mapping Charge Transport by Electroluminescence in Chirality-Selected Carbon Nanotube Networks | Q58231886 | ||
High-Mobility ZnO Nanorod Field-Effect Transistors by Self-Alignment and Electrolyte-Gating | Q58558408 | ||
Fast, sensitive and spectrally tuneable colloidal-quantum-dot photodetectors | Q62037784 | ||
Auger Recombination of Biexcitons and Negative and Positive Trions in Individual Quantum Dots | Q62512307 | ||
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P433 | issue | 3 | |
P407 | language of work or name | English | Q1860 |
P921 | main subject | quantum dot | Q1133068 |
P304 | page(s) | 1822-1828 | |
P577 | publication date | 2015-02-05 | |
P1433 | published in | Nano Letters | Q787913 |
P1476 | title | Light-emitting quantum dot transistors: emission at high charge carrier densities | |
P478 | volume | 15 |
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Q48169162 | Colloidal Quantum Dot Inks for Single-Step-Fabricated Field-Effect Transistors: The Importance of Postdeposition Ligand Removal |
Q57730168 | Double Gate PbS Quantum Dot Field-Effect Transistors for Tuneable Electrical Characteristics |
Q60957718 | Electroluminescence Generation in PbS Quantum Dot Light Emitting Field Effect Transistors with Solid State Gating |
Q40950405 | Enabling Ambipolar to Heavy n-Type Transport in PbS Quantum Dot Solids through Doping with Organic Molecules. |
Q38674657 | Endeavor of Iontronics: From Fundamentals to Applications of Ion-Controlled Electronics. |
Q59113725 | Green Synthesis of CuInS2/ZnS Nanocrystals with High Photoluminescence and Stability |
Q38908126 | On-Demand Coupling of Electrically Generated Excitons with Surface Plasmons via Voltage-Controlled Emission Zone Position |
Q36237345 | Surface Lattice Resonances for Enhanced and Directional Electroluminescence at High Current Densities |
Q53284470 | Temperature-dependent photoluminescence of cadmium-free Cu-Zn-In-S quantum dot thin films as temperature probes. |
Q57730163 | Tunable doping in PbS nanocrystal field-effect transistors using surface molecular dipoles |
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