TY - GEN
T1 - Conductance microscopy for electric conduction study of bio-inspired hybrid nanostructures under ambient conditions
AU - Setyawan, Wahyu
AU - Rao, Saleem
AU - Hong, Seunghun
PY - 2002
Y1 - 2002
N2 - Electrical conductance of single stranded DNA (5′-TTT TTT TTT T/3 Thio MC3-D/-3′) monolayer patterns on Au surface is compared with those of various organic molecular patterns via the conductance microscope (CM) technique that allows one to take nanoscale conductance images utilizing a conducting AFM tip in contact mode AFM. In the experiment, reference molecules and ssDNA are patterned on the same substrate via direct deposition methods such as dip-pen nanolithography and microcontact printing. Then, conductance microscope image is recorded revealing the relative conductivity of ssDNA patterns relative to various reference molecules. 16-mercaptohexadecanoic acid and 2-mercaptobenzimidazole patterns are found conducting better than the ssDNA patterns. This result indicates that the ssDNA with 10T bases is a relatively poor electrical conductor. The capabilities of CM technique are also tested on various nanostructures including the single wall carbon nanotube junction.
AB - Electrical conductance of single stranded DNA (5′-TTT TTT TTT T/3 Thio MC3-D/-3′) monolayer patterns on Au surface is compared with those of various organic molecular patterns via the conductance microscope (CM) technique that allows one to take nanoscale conductance images utilizing a conducting AFM tip in contact mode AFM. In the experiment, reference molecules and ssDNA are patterned on the same substrate via direct deposition methods such as dip-pen nanolithography and microcontact printing. Then, conductance microscope image is recorded revealing the relative conductivity of ssDNA patterns relative to various reference molecules. 16-mercaptohexadecanoic acid and 2-mercaptobenzimidazole patterns are found conducting better than the ssDNA patterns. This result indicates that the ssDNA with 10T bases is a relatively poor electrical conductor. The capabilities of CM technique are also tested on various nanostructures including the single wall carbon nanotube junction.
UR - https://www.scopus.com/pages/publications/34249882177
U2 - 10.1557/proc-761-nn1.4/c1.4
DO - 10.1557/proc-761-nn1.4/c1.4
M3 - Conference contribution
AN - SCOPUS:34249882177
SN - 1558996982
SN - 9781558996984
T3 - Materials Research Society Symposium Proceedings
SP - 71
EP - 76
BT - Molecular Electronics
PB - Materials Research Society
ER -