By Bharat Bhushan, Harald Fuchs
Volumes II, III and IV study the actual and technical origin for contemporary growth in utilized near-field scanning probe recommendations, and construct upon the 1st quantity released in early 2004. the sphere is progressing so quickly that there's a want for a moment set of volumes to seize the newest advancements. It constitutes a well timed finished evaluation of SPM functions, now that commercial purposes span topographic and dynamical floor reviews of thin-film semiconductors, polymers, paper, ceramics, and magnetic and organic fabrics. quantity II introduces scanning probe microscopy, together with sensor expertise, quantity III covers the total variety of characterization percentages utilizing SPM and quantity IV bargains chapters on makes use of in a variety of commercial functions. The foreign standpoint provided in those 3 volumes - which belong jointly - contributes extra to the evolution of SPM innovations.
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Extra info for Applied Scanning Probe Methods IV: Industrial Applications (NanoScience and Technology) (v. 4)
It Tobias Lange Institute of Physiology II Robert-Koch Str. ch Nikolai K. Myshkin Tribology Department Metal-Polymer Research Institute of Belarus National Academy of Sciences Kirov st. ru Dessy Nikova Institute of Physiology II Robert-Koch Str. fr Hans Oberleithner Institute of Physiology II Robert-Koch Str. de René M. edu Mark I. Petrokovets Tribology Department Metal-Polymer Research Institute of Belarus National Academy of Sciences Kirov st. il Massimo Sancrotti INFM and Dipartimento di Matematica e Fisica Università Cattolica del Sacro Cuore via dei Musei 41, I-25121 Brescia, Italy Laboratorio TASC-INFM Strada Statale 14, km.
429 Capacitance Storage Using a Ferroelectric Medium and a Scanning Capacitance Microscope (SCM) Ryoichi Yamamoto . . . . . . . . . . . . . . 439 Room-Temperature Single-Electron Devices formed by AFM Nano-Oxidation Process Kazuhiko Matsumoto . . . . . . . . . . . . . 459 Subject Index . . . . . . . . . . . . . . . . . . . . . . . . . . R. cn James D. edu U. es Jayne C. ch B. edu Joseph M. com William P.
Ivanisevic Fig. 2. (a–c) Antirabbit IgG proteins patterned on negatively charged silicon oxide surfaces using DPN imaged by ﬂuorescent microscopy. The antirabbit IgG proteins were labeled using Alexa 594 as a ﬂuorescent marker. (d) Protein patterns formed on aldehyde modiﬁed surfaces of antirabbit IgG. The upper line consists of dot patterns of the antirabbit IgG stained with Alexa 594. The lower line is dot patterns of antihuman IgG stained by Alexa 488. This demonstrates the ability of DPN to generate patterns of multiple inks on the same surface.
Applied Scanning Probe Methods IV: Industrial Applications (NanoScience and Technology) (v. 4) by Bharat Bhushan, Harald Fuchs