The miniaturization of nanometer-sized multicolor fluorescent features is of continuous significance for counterfeit security features, data storage, and sensors. Recent advances in engineering of stimuli-responsive supramolecular polymeric materials that respond upon exposure to heat or mechanical force by changing their fluorescence characteristics open new opportunities as functional lithographic resists. Here, we demonstrate the patterning of a thermochromic supramolecular material by thermal scanning probe lithography (t-SPL), an emerging nanofabrication technique, which allows for ultrafast indentation with a heated probe, resulting in both fluorescent and topographic nanofeatures. t-SPL indentation reveals a linear relationship betwe...
The ability to precisely control the localization of enzymes on a surface is critical for several ap...
Copyright © 2019 American Chemical Society. The reversible phase transitions of surface tethered the...
\u3cp\u3eScanning probe-assisted patterning methods already demonstrated a high degree of capabiliti...
This work presents the novel applications of heated AFM tip in nanolithography. Different strategies...
Scanning probe lithography (SPL) includes a variety of techniques which produce nanopatterns based o...
Thermoplastic polymer micro- and nanostructures suffer pattern decay when heated to a temperature cl...
The search of novel tools controlling the physical and chemical properties of matter at the nanoscal...
We applied a super-resolution fluorescence imaging based on selective adsorption and redox switching...
Thermal scanning probe lithography (tSPL) is a nanofabrication method for the chemical and physical ...
The research described in this Thesis comprises the development of Scanning Thermal Lithography (STh...
We report a nanolithography technique that allows simultaneous direct control of the local chemistry...
Thermosensitive fluorescent dyes can convert thermal signals into optical signals as a molecular nan...
High-throughput and large-scale patterning of enzymes with sub-10 nm resolution, the size range of i...
Thermal scanning probe lithography (t-SPL) is an advanced lithography technique in which a heated at...
The ability to precisely control the localization of enzymes on a surface is critical for several ap...
Copyright © 2019 American Chemical Society. The reversible phase transitions of surface tethered the...
\u3cp\u3eScanning probe-assisted patterning methods already demonstrated a high degree of capabiliti...
This work presents the novel applications of heated AFM tip in nanolithography. Different strategies...
Scanning probe lithography (SPL) includes a variety of techniques which produce nanopatterns based o...
Thermoplastic polymer micro- and nanostructures suffer pattern decay when heated to a temperature cl...
The search of novel tools controlling the physical and chemical properties of matter at the nanoscal...
We applied a super-resolution fluorescence imaging based on selective adsorption and redox switching...
Thermal scanning probe lithography (tSPL) is a nanofabrication method for the chemical and physical ...
The research described in this Thesis comprises the development of Scanning Thermal Lithography (STh...
We report a nanolithography technique that allows simultaneous direct control of the local chemistry...
Thermosensitive fluorescent dyes can convert thermal signals into optical signals as a molecular nan...
High-throughput and large-scale patterning of enzymes with sub-10 nm resolution, the size range of i...
Thermal scanning probe lithography (t-SPL) is an advanced lithography technique in which a heated at...
The ability to precisely control the localization of enzymes on a surface is critical for several ap...
Copyright © 2019 American Chemical Society. The reversible phase transitions of surface tethered the...
\u3cp\u3eScanning probe-assisted patterning methods already demonstrated a high degree of capabiliti...