The creation of switchable and tunable nanodevices displaying transport properties similar to those observed in biological pores poses a major challenge in molecular nanotechnology. Here, we describe the construction of a fully "abiotic" nanodevice whose transport properties can be accurately controlled by manipulating the proton concentration in the surrounding environment. The ionic current switching characteristics displayed by the nanochannels resemble the typical behavior observed in many biological channels that fulfill key pH-dependent transport functions in living organisms, that is, the nanochannel can be switched from an "off" state to an "on" state in response to a pH drop. The construction of such a chemical nanoarchitecture req...
Several nanoporous platforms were functionalized with pH-responsive poly(methacrylic acid) (PMAA) br...
[[abstract]]Due to its capability of mimicking ion channels in living organisms, the ionic transport...
Bioinspired artificial functional nanochannels for intelligent molecular and ionic transport control...
The creation of switchable and tunable nanodevices displaying transport properties similar to those ...
In this work we describe for the first time the integration of "smart" polymer brushes into single c...
We describe the use of polyprotic polymer brushes to construct robust signal-responsive chemical dev...
Biological ion channels have been an inspirational source in the development of new devices in a var...
In nature, ion channels facilitate the selective transport of ions, water and small organic molecule...
pH-gated ion channels in cell membranes play important roles in the cell's physiological activi...
During the last decade, nanofluidic devices based on solid‐state nanopores and nanochannels have com...
Nanochannels fabricated in ion-tracked polymer membranes have a great range of applications in biote...
Biological channels embedded in cell membranes regulate ionic transport by responding to external st...
Here, we demonstrate an anion controlled molecular gate based on synthetic ion channels modified wit...
Rational construction of interfaces based on multicomponent responsive systems in which molecular tr...
A dual-functional nanofluidic device is demonstrated that integrates the ionic gate and the ionic re...
Several nanoporous platforms were functionalized with pH-responsive poly(methacrylic acid) (PMAA) br...
[[abstract]]Due to its capability of mimicking ion channels in living organisms, the ionic transport...
Bioinspired artificial functional nanochannels for intelligent molecular and ionic transport control...
The creation of switchable and tunable nanodevices displaying transport properties similar to those ...
In this work we describe for the first time the integration of "smart" polymer brushes into single c...
We describe the use of polyprotic polymer brushes to construct robust signal-responsive chemical dev...
Biological ion channels have been an inspirational source in the development of new devices in a var...
In nature, ion channels facilitate the selective transport of ions, water and small organic molecule...
pH-gated ion channels in cell membranes play important roles in the cell's physiological activi...
During the last decade, nanofluidic devices based on solid‐state nanopores and nanochannels have com...
Nanochannels fabricated in ion-tracked polymer membranes have a great range of applications in biote...
Biological channels embedded in cell membranes regulate ionic transport by responding to external st...
Here, we demonstrate an anion controlled molecular gate based on synthetic ion channels modified wit...
Rational construction of interfaces based on multicomponent responsive systems in which molecular tr...
A dual-functional nanofluidic device is demonstrated that integrates the ionic gate and the ionic re...
Several nanoporous platforms were functionalized with pH-responsive poly(methacrylic acid) (PMAA) br...
[[abstract]]Due to its capability of mimicking ion channels in living organisms, the ionic transport...
Bioinspired artificial functional nanochannels for intelligent molecular and ionic transport control...