Over the last several decades, colloidal quantum dots (QDs) have been widely studied because of their unique optical and electronical properties such as band gap tunability, extremely high color purity, and efficient light absorption and emission. Consequently, they have been regarded as promising materials for next-generation optoelectronic devices such as displays, image sensors, and solar cells. Because these devices employ solid state forms of colloidal QD ensembles, the development of the processes that can tailor their 3D architecture is essential. Here, this review article explores the recent progress of the high-resolution printing techniques for colloidal QDs. Specifically, we present a wide range of methods including photolithogra...
ABSTRACT: Colloidal quantum-dots are bright, tunable emitters that are ideal for studying near-field...
A novel method to realizing printed active photonic devices was developed using nanoimprint lithogra...
Colloidal quantum dot (QD) systems offer distinct optical and electronic properties that are not eas...
This contribution presents a method for producing nanoscale color pixels for high-resolution display...
Semiconductor quantum dots (QDs) feature excellent properties, such as high quantum efficiency, tuna...
Access to a blossoming library of colloidal nanomaterials provides building blocks for complex assem...
Micro / nanoscale manufacturing requires unique approaches to accommodate the immensely different ch...
Here we demonstrate materials and operating conditions that allow for high-resolution printing of la...
Here we demonstrate materials and operating conditions that allow for high-resolution printing of la...
The addition of quantum dot (QD) nanoparticles to additive manufacturing (AM) media provides the op...
The addition of quantum dot (QD) nanoparticles to additive manufacturing (AM) media provides the op...
The next generation of a self‐emitting display requires precise and stable patterning techniques to ...
The patterning of colloidal quantum dots with nanometer resolution is essential for their applicatio...
The next generation of a self‐emitting display requires precise and stable patterning techniques to ...
Color conversion layer refers to a layer that converts the blue light emitted from the backlight int...
ABSTRACT: Colloidal quantum-dots are bright, tunable emitters that are ideal for studying near-field...
A novel method to realizing printed active photonic devices was developed using nanoimprint lithogra...
Colloidal quantum dot (QD) systems offer distinct optical and electronic properties that are not eas...
This contribution presents a method for producing nanoscale color pixels for high-resolution display...
Semiconductor quantum dots (QDs) feature excellent properties, such as high quantum efficiency, tuna...
Access to a blossoming library of colloidal nanomaterials provides building blocks for complex assem...
Micro / nanoscale manufacturing requires unique approaches to accommodate the immensely different ch...
Here we demonstrate materials and operating conditions that allow for high-resolution printing of la...
Here we demonstrate materials and operating conditions that allow for high-resolution printing of la...
The addition of quantum dot (QD) nanoparticles to additive manufacturing (AM) media provides the op...
The addition of quantum dot (QD) nanoparticles to additive manufacturing (AM) media provides the op...
The next generation of a self‐emitting display requires precise and stable patterning techniques to ...
The patterning of colloidal quantum dots with nanometer resolution is essential for their applicatio...
The next generation of a self‐emitting display requires precise and stable patterning techniques to ...
Color conversion layer refers to a layer that converts the blue light emitted from the backlight int...
ABSTRACT: Colloidal quantum-dots are bright, tunable emitters that are ideal for studying near-field...
A novel method to realizing printed active photonic devices was developed using nanoimprint lithogra...
Colloidal quantum dot (QD) systems offer distinct optical and electronic properties that are not eas...