Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the subject of intense research with the hope that practical applications in fields ranging from electronics to energy science will emerge. The atomic thinness, stability and electrical sensitivity of graphene motivated us to investigate the potential use of graphene membranes and graphene nanopores to characterize single molecules of DNA in ionic solution. Here we show that when immersed in an ionic solution, a layer of graphene becomes a new electrochemical structure that we call a trans-electrode. The trans-electrode’s unique properties are the consequence of the atomic-scale proximity of its two opposing liquid–solid interfaces together with ...
Single layer graphene, as a one-atom-thick highly conductive layer, is an exciting candidate for hi...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
ABSTRACT: Accurately defining the nanoporous structure and sensing the ionic flow across nanoscale p...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
It has recently been recognized that solid-state nanopores in single-atomic-layer graphene membranes...
Graphene is a two-dimensional, atomic thin, usually impermeable nanomaterial with astonishing electr...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2015.Ca...
Nanopores are impedance based bio-sensors. The principle of nanopore sensors is analogous to that of...
We report selective ionic transport through controlled, high-density, subnanometer diameter pores in...
A method is established to reliably suspend graphene monolayers across glass nanopores as a simple, ...
Nanopores are impedance based bio-sensors. The principle of nanopore sensors is analogous to that of...
Modulation of ionic current flowing through nanoscale pores is one of the fundamental biological pro...
© 2017 Dr. Hualin ZhanResearch of graphene for life science has attracted significant attention from...
As population growth continues to outpace development of water infrastructure in many countries, des...
We study the electrochemistry of single layer graphene edges using a nanopore-based structure consis...
Single layer graphene, as a one-atom-thick highly conductive layer, is an exciting candidate for hi...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
ABSTRACT: Accurately defining the nanoporous structure and sensing the ionic flow across nanoscale p...
Isolated, atomically thin conducting membranes of graphite, called graphene, have recently been the ...
It has recently been recognized that solid-state nanopores in single-atomic-layer graphene membranes...
Graphene is a two-dimensional, atomic thin, usually impermeable nanomaterial with astonishing electr...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mechanical Engineering, 2015.Ca...
Nanopores are impedance based bio-sensors. The principle of nanopore sensors is analogous to that of...
We report selective ionic transport through controlled, high-density, subnanometer diameter pores in...
A method is established to reliably suspend graphene monolayers across glass nanopores as a simple, ...
Nanopores are impedance based bio-sensors. The principle of nanopore sensors is analogous to that of...
Modulation of ionic current flowing through nanoscale pores is one of the fundamental biological pro...
© 2017 Dr. Hualin ZhanResearch of graphene for life science has attracted significant attention from...
As population growth continues to outpace development of water infrastructure in many countries, des...
We study the electrochemistry of single layer graphene edges using a nanopore-based structure consis...
Single layer graphene, as a one-atom-thick highly conductive layer, is an exciting candidate for hi...
Graphene nanopore has been promising the ultra-high resolution for DNA sequencing due to the atomic ...
ABSTRACT: Accurately defining the nanoporous structure and sensing the ionic flow across nanoscale p...