-
1
-
-
0028241625
-
Direct detection of nucleic acid hybridization on the surface of a charge coupled device
-
COI: 1:CAS:528:DyaK2cXltVSktLc%3D
-
Lamture, J.B. et al. Direct detection of nucleic acid hybridization on the surface of a charge coupled device. Nucl. Acid. Res.22, 2121–125 (1994).
-
(1994)
Nucl. Acid. Res.
, vol.22
, pp. 2121-2125
-
-
Lamture, J.B.1
-
2
-
-
0034667209
-
-
Moller, R., Csaki, A., Kohler, J.M. & Fritzsche, W. DNA probes on chip surfaces studied by scanning force microscopy using specific binding of colloidal gold. Nucl. Acid. Res. 28, e91 (2000)
-
Moller, R., Csaki, A., Kohler, J.M. & Fritzsche, W. DNA probes on chip surfaces studied by scanning force microscopy using specific binding of colloidal gold. Nucl. Acid. Res.28, e91 (2000).
-
-
-
-
3
-
-
0038548063
-
Self-assembly of micro- and nanoscale particles using bio-inspired events
-
COI: 1:CAS:528:DC%2BD3sXksVWrt7k%3D
-
McNally, H. et al. Self-assembly of micro- and nanoscale particles using bio-inspired events. Appl. Surf. Sci.214, 109–19 (2003).
-
(2003)
Appl. Surf. Sci.
, vol.214
, pp. 109-119
-
-
McNally, H.1
-
4
-
-
0038248922
-
Immobilization of DNA on CMOS compatible materials
-
COI: 1:CAS:528:DC%2BD3sXjs1Cgu7c%3D
-
Lobert, P.E. et al. Immobilization of DNA on CMOS compatible materials. Sens. Actuat. B92, 90–7 (2003).
-
(2003)
Sens. Actuat.
, vol.92
, pp. 90-97
-
-
Lobert, P.E.1
-
5
-
-
84862585628
-
Photoactivated immobilization of single-stranded DNAs on a psoralen-functionalized surface under low pH conditions
-
COI: 1:CAS:528:DC%2BC38Xos1Cku70%3D
-
Ahn, J., Byun, J.Y., Shin, Y.-B. & Kim, M.-G. Photoactivated immobilization of single-stranded DNAs on a psoralen-functionalized surface under low pH conditions. BioChip J.6, 174–83 (2012).
-
(2012)
BioChip J.
, vol.6
, pp. 174-183
-
-
Ahn, J.1
Byun, J.Y.2
Shin, Y.-B.3
Kim, M.-G.4
-
6
-
-
33747872288
-
Recirculating flow accelerates DNA microarray hybridization in a microfluidic device
-
COI: 1:CAS:528:DC%2BD28XosFGnur8%3D
-
Lee, H.H., Smoot, J., McMurray, Z., Stahl, D.A. & Yager, P. Recirculating flow accelerates DNA microarray hybridization in a microfluidic device. Lab Chip6, 1163–170 (2006).
-
(2006)
Lab Chip
, vol.6
, pp. 1163-1170
-
-
Lee, H.H.1
Smoot, J.2
McMurray, Z.3
Stahl, D.A.4
Yager, P.5
-
7
-
-
38349000546
-
Microfluidic lab-on-a-chip for microbial identification on a DNA microarray
-
COI: 1:CAS:528:DC%2BD1cXksFOqsQ%3D%3D
-
Lee, H.H. & Yager, P. Microfluidic lab-on-a-chip for microbial identification on a DNA microarray. Biotech. Biopro. Eng.12, 634–39 (2007).
-
(2007)
Biotech. Biopro. Eng.
, vol.12
, pp. 634-639
-
-
Lee, H.H.1
Yager, P.2
-
9
-
-
1342328089
-
Direct electrical detection of hybridization at DNAmodified silicon surfaces
-
COI: 1:CAS:528:DC%2BD2cXhslCjsbo%3D
-
Cai, W., Peck, J.R., van der Weide, D.W. & Hamers, R.J. Direct electrical detection of hybridization at DNAmodified silicon surfaces. Biosens. Bioelectron.19, 1013–019 (2004).
-
(2004)
Biosens. Bioelectron.
, vol.19
, pp. 1013-1019
-
-
Cai, W.1
van der Peck, J.R.2
Weide, D.W.3
Hamers, R.J.4
-
10
-
-
77951622024
-
Gold nanoparticle embedded silicon nanowire biosensor for applications of label-free DNA detection
-
COI: 1:CAS:528:DC%2BC3cXks1Khtb0%3D
-
Ryu, S.-W. et al. Gold nanoparticle embedded silicon nanowire biosensor for applications of label-free DNA detection. Biosens. Bioelectron.25, 2182–185 (2010).
-
(2010)
Biosens. Bioelectron.
, vol.25
, pp. 2182-2185
-
-
Ryu, S.-W.1
-
11
-
-
79952081708
-
Label-free DNA detection with a nanogap embedded complementary metal oxide semiconductor
-
Kim, C.-H., Jung, C., Lee, K.-B., Park, H.G. & Choi, Y.-K. Label-free DNA detection with a nanogap embedded complementary metal oxide semiconductor. Nanotechnol. 22, 135502 (2011).
-
(2011)
Nanotechnol
, vol.22
-
-
Kim, C.-H.1
Jung, C.2
Lee, K.-B.3
Park, H.G.4
Choi, Y.-K.5
-
13
-
-
84865859212
-
-
Libertino, S., Cannells, G., Aiello, V., Busacca, A. & Lombardo, S. Electrical characterization of deoxyribonucleic acid hybridization in metal-oxide-semiconductor-like structure. Appl. Phys. Lett. 101, 093703 (2012)
-
Libertino, S., Cannells, G., Aiello, V., Busacca, A. & Lombardo, S. Electrical characterization of deoxyribonucleic acid hybridization in metal-oxide-semiconductor-like structure. Appl. Phys. Lett.101, 093703 (2012).
-
-
-
-
14
-
-
72149091968
-
Nanoscale protein-based memory device composed of recombinant azurin
-
COI: 1:CAS:528:DC%2BD1MXhs1SltLrI
-
Kim, S.-U., Yagati, A.K., Min, J. & Choi, J.-W. Nanoscale protein-based memory device composed of recombinant azurin. Biomater.31, 1293–298 (2010).
-
(2010)
Biomater.
, vol.31
, pp. 1293-1298
-
-
Kim, S.-U.1
Yagati, A.K.2
Min, J.3
Choi, J.-W.4
-
15
-
-
84882257605
-
A bio-inspired associative memory system based on enzymatic cascades
-
McVittie, K., Halamek, J., Privman, V. & Katz, E. A bio-inspired associative memory system based on enzymatic cascades. Chem. Comm.49, 6962–964 (2013).
-
(2013)
Chem. Comm.
, vol.49
, pp. 6962-6964
-
-
McVittie, K.1
Halamek, J.2
Privman, V.3
Katz, E.4
-
16
-
-
77958097505
-
-
Jung, S.M. et al. Electrical charging of Au nanoparticles embedded by streptavidin-biotin biomolecular binding in organic memory device. Appl. Phys. Lett. 97, 153302 (2010)
-
Jung, S.M. et al. Electrical charging of Au nanoparticles embedded by streptavidin-biotin biomolecular binding in organic memory device. Appl. Phys. Lett.97, 153302 (2010).
-
-
-
-
17
-
-
84855401867
-
Charging effect in Au nanoparticle memory device with biomolecule binding mechanism
-
COI: 1:CAS:528:DC%2BC3MXhtlOrsrzI
-
Jung, S.M. et al. Charging effect in Au nanoparticle memory device with biomolecule binding mechanism. J. Nanosci. Nanotechnol.11, 5698–701 (2011).
-
(2011)
J. Nanosci. Nanotechnol.
, vol.11
, pp. 5698-5701
-
-
Jung, S.M.1
-
18
-
-
84883341812
-
-
Oh, S. et al. Organic memory device with self-assembly monolayered aptamer conjugated nanoparticles. Appl. Phys. Lett. 103, 083702 (2013)
-
Oh, S. et al. Organic memory device with self-assembly monolayered aptamer conjugated nanoparticles. Appl. Phys. Lett.103, 083702 (2013).
-
-
-
-
19
-
-
84892861311
-
Robust ZnO nanoparticle embedded memory device using vancomycin conjugate and its bio-recognition for electrical charging nodes
-
COI: 1:CAS:528:DC%2BC2cXjsVWqsL0%3D
-
Kim, M. et al. Robust ZnO nanoparticle embedded memory device using vancomycin conjugate and its bio-recognition for electrical charging nodes. Biosens. Bioelectron.56, 33–8 (2014).
-
(2014)
Biosens. Bioelectron.
, vol.56
, pp. 33-38
-
-
Kim, M.1
-
20
-
-
10044258525
-
Integrated nanoparticle biomolecule hybrid systems: synthesis, properties, and applications
-
COI: 1:CAS:528:DC%2BD2cXhtVKgsr3P
-
Katz, E. & Willner, I. Integrated nanoparticle biomolecule hybrid systems: synthesis, properties, and applications. Angew. Chem. Int. Ed.43, 6042–108 (2004).
-
(2004)
Angew. Chem. Int. Ed.
, vol.43
, pp. 6042-6108
-
-
Katz, E.1
Willner, I.2
-
21
-
-
37249063660
-
-
Akkerman, H.B. & de Boer, B. Electrical conduction through single molecules and self-assembled monolayers. J. Phys.: Condens. Matter 20, 013001 (2008)
-
Akkerman, H.B. & de Boer, B. Electrical conduction through single molecules and self-assembled monolayers. J. Phys.: Condens. Matter20, 013001 (2008).
-
-
-
-
22
-
-
63649150319
-
-
Zhou, J.-G. & Williams, Q.L. How does an external electrical field affect adsorption patterns of thiol and thiolate on the gold substrate? J. Phys.: Condens. Matter 21, 055008 (2009)
-
Zhou, J.-G. & Williams, Q.L. How does an external electrical field affect adsorption patterns of thiol and thiolate on the gold substrate? J. Phys.: Condens. Matter21, 055008 (2009).
-
-
-
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