Inkjet printing is a cost-effective and scalable way to assemble colloidal materials into desired patterns in a vacuum- and lithography-free manner. Two-dimensional (2D) nanosheets are a promising material category for printed electronics because of their compatibility with solution processing for stable ink formulations as well as a wide range of electronic types from metal, semiconductor to insulator. Furthermore, their dangling bond-free surface enables atomically thin, electronically-active thin films with van der Waals contacts which significantly reduce the junction resistance. Here, we demonstrate all inkjet-printed thin-film transistors consisting of electrochemically exfoliated graphene, MoS2, and HfO2 as metallic electrodes, a sem...
Fully printed wearable electronics based on two-dimensional (2D) material heterojunction structures ...
Air-stable semiconducting inks suitable for complementary logic are key to create low-power printed ...
Paper is the ideal substrate for the development of flexible and environmentally sustainable ubiquit...
Thanks to their electrical, mechanical and optical properties, two-dimensional materials are promisi...
The need for robust, sensitive, portable, and inexpensive electronic systems is of significant inter...
In monolayers of two-dimensional (2-D) layered materials, the motion of electrons is confined to a 2...
The need for robust, sensitive, portable, and inexpensive electronic systems is of significant inter...
In monolayers of two-dimensional (2-D) layered materials, the motion of electrons is confined to a 2...
Fully-printed electronics based on two-dimensional (2d) material heterostructures, such as field eff...
Thin-films deposited through scalable printing techniques is key to next generation large-area elect...
Abstract Transition metal dichalcogenide-based thin-film transistors (TFTs) have drawn intense resea...
Heterostructures constructed from two-dimensional (2D) building blocks have shown promise for field-...
Thin-films deposited through scalable printing techniques is key to next generation large-area elect...
Thin-films deposited through scalable printing techniques is key to next generation large-area elect...
Fully printed wearable electronics based on two-dimensional (2D) material heterojunction structures ...
Fully printed wearable electronics based on two-dimensional (2D) material heterojunction structures ...
Air-stable semiconducting inks suitable for complementary logic are key to create low-power printed ...
Paper is the ideal substrate for the development of flexible and environmentally sustainable ubiquit...
Thanks to their electrical, mechanical and optical properties, two-dimensional materials are promisi...
The need for robust, sensitive, portable, and inexpensive electronic systems is of significant inter...
In monolayers of two-dimensional (2-D) layered materials, the motion of electrons is confined to a 2...
The need for robust, sensitive, portable, and inexpensive electronic systems is of significant inter...
In monolayers of two-dimensional (2-D) layered materials, the motion of electrons is confined to a 2...
Fully-printed electronics based on two-dimensional (2d) material heterostructures, such as field eff...
Thin-films deposited through scalable printing techniques is key to next generation large-area elect...
Abstract Transition metal dichalcogenide-based thin-film transistors (TFTs) have drawn intense resea...
Heterostructures constructed from two-dimensional (2D) building blocks have shown promise for field-...
Thin-films deposited through scalable printing techniques is key to next generation large-area elect...
Thin-films deposited through scalable printing techniques is key to next generation large-area elect...
Fully printed wearable electronics based on two-dimensional (2D) material heterojunction structures ...
Fully printed wearable electronics based on two-dimensional (2D) material heterojunction structures ...
Air-stable semiconducting inks suitable for complementary logic are key to create low-power printed ...
Paper is the ideal substrate for the development of flexible and environmentally sustainable ubiquit...