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Development of Development of Local and Scanning Local and Scanning Probe Techniques Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

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Page 1: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Development of Development of Local and Scanning Local and Scanning Probe TechniquesProbe Techniques

Heinrich HoerberNanoBioPhysicsUniversity Bristol

Page 2: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

200 nm

Haberle, W., J. K. H. Horber, and G. Binnig, 1991, Journal of Vacuum Science & Technology B 9, 1210

Combining AFM and Combining AFM and optical microscopyoptical microscopyCombining AFM and Combining AFM and optical microscopyoptical microscopy

Page 3: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

AFM image sequence of a pox virus release at the end of a microvillus

EM image by Stokes 1976

Scanning fast - making Scanning fast - making moviesmoviesScanning fast - making Scanning fast - making moviesmovies

Horber, J.K.H., et al., 1992, Scanning Microscopy 6, 919

Page 4: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Horber, J. K. H., W. Haberle and

B. Sakmann, 1995 Biophysical Journal 68, 1687

Combination with Combination with electro-physiological techniqueselectro-physiological techniquesCombination with Combination with electro-physiological techniqueselectro-physiological techniques

Page 5: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Koitschev, A., S. Fink, U. Rexhausen, K. Loffler, J. K. H. Horber, H. P. Zenner, J. R. Ruppersberg, and M. G. Langer, 2002, Hno 50, 464-469

AFM in hearing AFM in hearing researchresearchAFM in hearing AFM in hearing researchresearch

Page 6: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Cantilever Cantilever developmentdevelopmentCantilever Cantilever developmentdevelopment

IBM Research Laboratory RueschlikonM. Despont, G. Binnig, P. Vettiger and C. Gerber

Page 7: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Heat flow between Heat flow between cantilever and substratecantilever and substrate

Heat flow between Heat flow between cantilever and substratecantilever and substrate

Heat transfer throughcantilever arms (~4 mW)

Cantilever with heater

through tip in contact 50-500 nW

Through air to substrate (10-20 μW)

50-5000C

ΔR/R: 10-6–10-5/nm

Page 8: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

2 μm

Lipid vesicles with reconstituted membrane proteins (SNAP25, B.Jena)

2 μm1 μm

SiC GaN

Metal connection on a storage chip structure underneath a SiO2 layer(Zarlink)

Cut through a transistor structure(M. Kubal)

Heat conductivityHeat conductivityHeat conductivityHeat conductivity

Haeberle, W, Pantea, M & Hoerber, JKH. 2006, Ultramicroscopy, 106 (8-9), 678

Page 9: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

100 m 1 m

length 260 m, width 1 m, thickness 200 nm, spring constant 0.03 pN/nm

Smaller cantileversSmaller cantileversSmaller cantileversSmaller cantilevers

James Vicary

Page 10: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

AFM with the cantilever AFM with the cantilever verticalverticalAFM with the cantilever AFM with the cantilever verticalvertical

Massimo Antognozzi, Arturas Ulcinas

Page 11: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Maximal cantilever bending

Molecular Motor Molecular Motor movementmovementMolecular Motor Molecular Motor movementmovement

Massimo Antognozzi, Tim Scholz

Page 12: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

0.5 nm

200 nm

200 μm

0.02 N/m

Florin, E. L., A. Pralle, E. H. K. Stelzer, and J. K. H. Horber, 1998, Applied Physics A-Materials Science & Processing 66, S75

Spatial resolution Spatial resolution ~ 1nm~ 1nmTime resolution ~ 1Time resolution ~ 1μμsecsec

PPhotonic hotonic FForce orce MMicroscopyicroscopyPPhotonic hotonic FForce orce MMicroscopyicroscopy

Page 13: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Agarose polymer networkAgarose polymer network

Tischer, C. et al., 2001, Appl. Phys. Lett. 79, 3878

Thermal fluctuation Thermal fluctuation imagingimagingThermal fluctuation Thermal fluctuation imagingimaging

Page 14: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Membrane diffusion 2D / Membrane diffusion 2D / 3D3DMembrane diffusion 2D / Membrane diffusion 2D / 3D3D

Page 15: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Confining potential map

Viscosity map

Interaction map of an LDL Interaction map of an LDL receptorreceptorInteraction map of an LDL Interaction map of an LDL receptorreceptor

Page 16: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Parallelisation of Parallelisation of PFMPFMParallelisation of Parallelisation of PFMPFM

Page 17: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Producing many Producing many independent independent focused laser beamsfocused laser beams

Producing many Producing many independent independent focused laser beamsfocused laser beams

Page 18: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Nano-particles crossing Nano-particles crossing the cell membranethe cell membrane

Nano-particles crossing Nano-particles crossing the cell membranethe cell membrane

Page 19: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Types of nano-Types of nano-particlesparticlesTypes of nano-Types of nano-particlesparticles

Page 20: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Gold nano-particles Gold nano-particles

interacting with interacting with lightlight

Gold nano-particles Gold nano-particles

interacting with interacting with lightlight

Page 21: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Nearfield fluorescence Nearfield fluorescence excitationexcitationNearfield fluorescence Nearfield fluorescence excitationexcitation

Page 22: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Raman Spectroscopy

Chemical sensingChemical sensingChemical sensingChemical sensing

Surface EnhancedRaman Spectroscopy

Page 23: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol

Nano-Sensors (Scanning Probe Microscopies)

Nano-toxicology

Nano-medicine (markers, drug delivery)

Nano-particles - areas of interestNano-particles - areas of interest

Page 24: Development of Local and Scanning Probe Techniques Heinrich Hoerber NanoBioPhysics University Bristol