We demonstrate that, contrary to current understanding, the density of probe molecules is not responsible for the lack of hybridization in high density single-stranded DNA (ss-DNA) self-assembled monolayers (SAMs). To this end, we use nanografting to fabricate well packed ss-DNA nanopatches within a "carpet matrix" SAM of inert thiols on gold surfaces. The DNA surface density is varied by changing the "writing" parameters, for example, tip speed, and number of scan lines. Since ss-DNA is 50 times more flexible than ds-DNA, hybridization leads to a transition to a "standing up" phase. Therefore, accurate height and compressibility measurements of the nanopatches before and after hybridization allow reliable, sensitive, and label-free detecti...
We have studied the immobilization of single stranded (ss) DNA oligonucleotides of 16–27 base pairs ...
Here we show that adsorption of water on highly-packed self-assembled monolayers (SAMs) of single st...
A central question in DNA biosensors is how the surface structure impact the molecular recognition, ...
We demonstrate that, contrary to current understanding, the density of probe molecules is not respon...
Nanografted monolayers (NAMs) of DNA, show novel physico-chemical properties, that make them ideally...
Hybridization of surface-immobilized oligonucleotides to their complementary counterparts is central...
Electrochemical biosensors have extremely robust applications while offering ease of preparation, mi...
High-density monolayers (HDMs) of single-strand (ss) DNA are important nanoscale platforms for the f...
The nanoscale arrangement of the DNA probe molecules on sensor surfaces has a profound impact on mol...
We have used nanografting, an atomic force microscopy (AFM)-based nanolithography technique, to fabr...
The ability to generate precisely designed molecular networks and modulate the surrounding environme...
Oligonucleotide-conjugated bio-hybrid nanomaterials with a dense DNA layer on the surface have been ...
The accessibility and binding affinity of DNA are two key parameters affecting the hybridization eff...
We have developed new surface to ensure a proper spacing between immobilized biomolecules. While DNA...
Advances in molecular engineering have enabled the formation of increasingly sophisticated molecular...
We have studied the immobilization of single stranded (ss) DNA oligonucleotides of 16–27 base pairs ...
Here we show that adsorption of water on highly-packed self-assembled monolayers (SAMs) of single st...
A central question in DNA biosensors is how the surface structure impact the molecular recognition, ...
We demonstrate that, contrary to current understanding, the density of probe molecules is not respon...
Nanografted monolayers (NAMs) of DNA, show novel physico-chemical properties, that make them ideally...
Hybridization of surface-immobilized oligonucleotides to their complementary counterparts is central...
Electrochemical biosensors have extremely robust applications while offering ease of preparation, mi...
High-density monolayers (HDMs) of single-strand (ss) DNA are important nanoscale platforms for the f...
The nanoscale arrangement of the DNA probe molecules on sensor surfaces has a profound impact on mol...
We have used nanografting, an atomic force microscopy (AFM)-based nanolithography technique, to fabr...
The ability to generate precisely designed molecular networks and modulate the surrounding environme...
Oligonucleotide-conjugated bio-hybrid nanomaterials with a dense DNA layer on the surface have been ...
The accessibility and binding affinity of DNA are two key parameters affecting the hybridization eff...
We have developed new surface to ensure a proper spacing between immobilized biomolecules. While DNA...
Advances in molecular engineering have enabled the formation of increasingly sophisticated molecular...
We have studied the immobilization of single stranded (ss) DNA oligonucleotides of 16–27 base pairs ...
Here we show that adsorption of water on highly-packed self-assembled monolayers (SAMs) of single st...
A central question in DNA biosensors is how the surface structure impact the molecular recognition, ...