Biological protein channels have many remarkable properties such as gating, high permeability, and selectivity, which have motivated researchers to mimic their functions for practical applications. Herein, using molecular dynamics simulations, we design bioinspired nanopores in graphene sheets that can discriminate between Na<sup>+</sup> and K<sup>+</sup>, two ions with very similar properties. The simulation results show that, under transmembrane voltage bias, a nanopore containing four carbonyl groups to mimic the selectivity filter of the KcsA K<sup>+</sup> channel preferentially conducts K<sup>+</sup> over Na<sup>+</sup>. A nanopore functionalized by four negatively charged carboxylate groups to mimic the selectivity filter of the NavAb...
Abstract: Ionic selectivity across nanochannels is of great importance to biological activities as w...
Graphene material has found tremendous applications in water desalination, DNA sequencing and energy...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Biological protein channels have many remarkable properties such as gating, high permeability, and s...
Biological protein channels have many remarkable properties such as gating, high permeability, and s...
The selective rate of specific ion transport across nanoporous material is critical to biological an...
The selective transport of K<sup>+</sup> or Na<sup>+</sup> in acqueous solutions by biomembranes is ...
Biomimetic nanopores based on membrane-spanning single-walled carbon nanotubes have been designed to...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Selective ion transport through nanoscale pores or channels has attracted considerable attention bec...
Modulation of ionic current flowing through nanoscale pores is one of the fundamental biological pro...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2015.Ca...
Recently reported synthetic organic nanopore (SONP) can mimic a key feature of natural ion channels,...
Ion channels play a key role in regulating cell behavior and in electrical signaling. In these setti...
Biological cells are filled with a variety of pores and channels that transport ions and molecules a...
Abstract: Ionic selectivity across nanochannels is of great importance to biological activities as w...
Graphene material has found tremendous applications in water desalination, DNA sequencing and energy...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Biological protein channels have many remarkable properties such as gating, high permeability, and s...
Biological protein channels have many remarkable properties such as gating, high permeability, and s...
The selective rate of specific ion transport across nanoporous material is critical to biological an...
The selective transport of K<sup>+</sup> or Na<sup>+</sup> in acqueous solutions by biomembranes is ...
Biomimetic nanopores based on membrane-spanning single-walled carbon nanotubes have been designed to...
The problem of predicting selective transport of ions through nano-pores from their structure in the...
Selective ion transport through nanoscale pores or channels has attracted considerable attention bec...
Modulation of ionic current flowing through nanoscale pores is one of the fundamental biological pro...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2015.Ca...
Recently reported synthetic organic nanopore (SONP) can mimic a key feature of natural ion channels,...
Ion channels play a key role in regulating cell behavior and in electrical signaling. In these setti...
Biological cells are filled with a variety of pores and channels that transport ions and molecules a...
Abstract: Ionic selectivity across nanochannels is of great importance to biological activities as w...
Graphene material has found tremendous applications in water desalination, DNA sequencing and energy...
The problem of predicting selective transport of ions through nano-pores from their structure in the...