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번호 | 참고문헌 | 국회도서관 소장유무 |
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1 | Bott, A.W. Redox properties of electron-transfer. Metalloproteins. Current Separations 18, 47-54 (1999). | 미소장 |
2 | Carbon Nanotube-Based Nonvolatile Random Access Memory for Molecular Computing ![]() |
미소장 |
3 | Electronic shift register memory based on molecular electron-transfer reactions ![]() |
미소장 |
4 | Yoder, N.L. & Hersam, M.C. Probing the performance and reliability of silicon-based molecular electronic devices with ultra-high vacuum scanning tunneling microscopy. Proceedings of the 3rd Annual Foundations of Nanoscience Conference 1, 80 (2006). | 미소장 |
5 | Characterization of Charge Storage in Redox-Active Self-Assembled Monolayers ![]() |
미소장 |
6 | Roth, K.M. et al. Measurements of electron-transfer rates of charge-storage molecular monolayers on Si (100). Toward hybrid molecular/semiconductor information storage devices. Journal of American Chemical Society 125, 505-517 (2003). | 미소장 |
7 | Molecular Memories That Survive Silicon Device Processing and Real-World Operation ![]() |
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8 | Biologic computational building blocks ![]() |
미소장 |
9 | Ambipolar transistors based on azurin proteins. ![]() |
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10 | Distance Dependence of the Electron-Transfer Rate Across Covalently Bonded Monolayers on Silicon ![]() |
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11 | Nanoscale Fabrication of Biomolecular Layer and Its Application to Biodevices | 소장 |
12 | Molecular-scale biophotodiode consisting of a green fluorescent protein/cytochrome c self-assembled heterolayer ![]() |
미소장 |
13 | Photoelectrical properties of molecular layer consisting of chlorophyll a∕ferredoxin heterostructure ![]() |
미소장 |
14 | An engineered azurin variant containing a selenocysteine copper ligand. ![]() |
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15 | Calculation of the redox potential of the protein azurin and some mutants. ![]() |
미소장 |
16 | Comparison of the self‐chemisorption of azurin on gold and on functionalized oxide surfaces ![]() |
미소장 |
17 | Azurin immobilisation on thiol covered Au(111) ![]() |
미소장 |
18 | Measurement of Electron Transfer Rates between Adsorbed Azurin and a Gold Electrode Modified with a Hexanethiol Layer ![]() |
미소장 |
19 | Kim, S.-U., Kim, Y.J., Choi, J.-W. & Oh, B.-K. Thin film fabrication of electroactive protein with heme group. BioChip Jounal 1, 188-192 (2007). | 미소장 |
20 | “Bottom-up” Approach for ImplementingNano/microstructure Using Biological andChemical Interactions | 소장 |
21 | Fuzzy Nanoassemblies: Toward Layered Polymeric Multicomposites ![]() |
미소장 |
22 | Green, R.J. et al. Surface plasmon resonance analysis of dynamic biological interactions with biomaterials. Biomaterials 21, 1823-1835 (2000). | 미소장 |
23 | Surface plasmon resonance imaging measurements of ultrathin organic films. ![]() |
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24 | Surface plasmon resonance sensors ![]() |
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25 | Atomic Force Microscopic Study of Specific Antigen/Antibody Binding ![]() |
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26 | Quasireversible cyclic voltammetry of a surface confined redox system: a mathematical treatment ![]() |
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27 | Voltammetry of Adsorbed Molecules. Part 2: Irreversible Redox Systems ![]() |
미소장 |
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