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Springer Netherlands
Solid Mechanics and Its Applications (297)
Bibliography

Pittenger, B., Erina, N., & Su, C. (2013). Mechanical Property Mapping at the Nanoscale Using PeakForce QNM Scanning Probe Technique. Nanomechanical Analysis of High Performance Materials, 31–51.

Authors 3
  1. Bede Pittenger (first)
  2. Natalia Erina (additional)
  3. Chanmin Su (additional)
References 24 Referenced 63
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  2. Dokukin ME, Sokolov I (2012) Quantitative mapping of the elastic modulus of soft materials with HarmoniX and PeakForce QNM AFM modes. Langmuir 28(46):16060–16071. doi:10.1021/la302706b (10.1021/la302706b) / Langmuir by ME Dokukin (2012)
  3. Israelachvili N (1992) Intermolecular and surface forces Academic Press, New York
  4. Legleiter J, Park M, Cusick B, Kowalewski T (2006) Scanning probe acceleration microscopy (SPAM) in fluids: Mapping mechanical properties of surfaces at the nanoscale. Proc Nat Acad Sci United States of Am 103(13):4813–4818. doi:10.1073/pnas.0505628103 (10.1073/pnas.0505628103) / Proc Nat Acad Sci United States of Am by J Legleiter (2006)
  5. Magonov S, Erina N (2005) Modern Trends in Atomic Force Microscopy of Polymers. Bruker application note AN84
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  7. Pittenger B, Erina N, Su C (2010) Quantitative Mechanical Property Mapping at the Nanoscale with Peak Force QNM. Bruker application note AN128
  8. Proksch R (2006) Multifrequency, repulsive-mode amplitude-modulated atomic force microscopy. Appl Phys Lett 89(11):113121–113123 (10.1063/1.2345593) / Appl Phys Lett by R Proksch (2006)
  9. Radmacher M, Cleveland JP, Fritz M, Hansma HG and Hansma PK (1994) Mapping interaction forces with the atomic force microscope. Biophys J 66:2159–2165 (10.1016/S0006-3495(94)81011-2) / Biophys J by M Radmacher (1994)
  10. Rode S, Oyabu N, Kobayashi K, Yamada H, Kühnle A (2009) True atomic-resolution Imaging of (1014) calcite in aqueous solution by frequency modulation atomic force microscopy. Langmuir 25(5):2850–2853. doi:10.1021/la803448v (10.1021/la803448v) / Langmuir by S Rode (2009)
  11. Rodriguez TR, Garcia R (2004) Compositional mapping of surfaces in atomic force microscopy by excitation of the second normal mode of the microcantilever. Appl Phys Lett 84(3):449–451 (10.1063/1.1642273) / Appl Phys Lett by TR Rodriguez (2004)
  12. Rosa-Zeiser A, Weilandt E, Hild S, Marti O (1997) The simultaneous measurement of elastic, electrostatic and adhesive properties by scanning force microscopy: pulsed-force mode operation. Meas Sci Technol 8(11):1333 (10.1088/0957-0233/8/11/020) / Meas Sci Technol by A Rosa-Zeiser (1997)
  13. Sahin O (2005) Harmonic force microscope: a new tool for biomolecular identification and material characterization based on nanomechanical Measurements. Stanford University
  14. Sahin O (2007) Harnessing bifurcations in tapping-mode atomic force microscopy to calibrate time-varying tip-sample force measurements. Rev Sci Instrum 78(10):103707–103704 (10.1063/1.2801009) / Rev Sci Instrum by O Sahin (2007)
  15. Sahin O, Magonov S, Su C, Quate CF, Solgaard O (2007) An atomic force microscope tip designed to measure time-varying nanomechanical forces. Nat Nanotechnol 2(8):507–514 (10.1038/nnano.2007.226) / Nat Nanotechnol by O Sahin (2007)
  16. Sheiko SS, Sumerlin BS, Matyjaszewski K (2008) Cylindrical molecular brushes: Synthesis, characterization, and properties. Progress in Polymer Sci 33(7):759–785. doi:http://dx.doi.org/10.1016/j.progpolymsci.2008.05.001 (10.1016/j.progpolymsci.2008.05.001)
  17. Stark M, Stark RW, Heckl WM, Guckenberger R (2002) Inverting dynamic force microscopy: From signals to time-resolved interaction forces. Proc Nat Acad Sci 99(13):8473–8478. doi:10.1073/pnas.122040599 (10.1073/pnas.122040599) / Proc Nat Acad Sci by M Stark (2002)
  18. Tamayo J, Garcia R (1997) Effects of elastic and inelastic interactions on phase contrast images in tapping-mode scanning force microscopy. Appl Phys Lett 71(16):2394–2396 (10.1063/1.120039) / Appl Phys Lett by J Tamayo (1997)
  19. Thoreson EJ, Martin J, Burnham NA (2006) The role of few-asperity contacts in adhesion. J Colloid Int Sci 298(1):94–101. doi:http://dx.doi.org/10.1016/j.jcis.2005.11.054 (10.1016/j.jcis.2005.11.054) / J Colloid Int Sci by EJ Thoreson (2006)
  20. Trtik P, Kaufmann J, Volz U (2012) On the use of peak-force tapping atomic force microscopy for quantification of the local elastic modulus in hardened cement paste. Cem Concr Res 42(1):215–221. doi:http://dx.doi.org/10.1016/j.cemconres.2011.08.009 (10.1016/j.cemconres.2011.08.009)
  21. Veeco Application note #84
  22. Veeco (2010) Quantitative mechanical property mapping at the nanoscale with PeakForce QNM
  23. Young TJ, Monclus MA, Burnett TL, Broughton WR, Ogin SL, Smith PA (2011) The use of the PeakForce TM quantitative nanomechanical mapping AFM-based method for high-resolution Young’s modulus measurement of polymers. Meas Sci Technol 22(12):125703 (10.1088/0957-0233/22/12/125703) / Meas Sci Technol by TJ Young (2011)
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Dates
Type When
Created 12 years ago (Aug. 9, 2013, 12:54 a.m.)
Deposited 2 years, 7 months ago (Jan. 19, 2023, 6:51 a.m.)
Indexed 3 days, 14 hours ago (Aug. 31, 2025, 7:23 p.m.)
Issued 12 years ago (Aug. 10, 2013)
Published 12 years ago (Aug. 10, 2013)
Published Online 12 years ago (Aug. 10, 2013)
Published Print 11 years, 8 months ago (Jan. 1, 2014)
Funders 0

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@inbook{Pittenger_2013, title={Mechanical Property Mapping at the Nanoscale Using PeakForce QNM Scanning Probe Technique}, ISBN={9789400769199}, ISSN={0925-0042}, url={http://dx.doi.org/10.1007/978-94-007-6919-9_2}, DOI={10.1007/978-94-007-6919-9_2}, booktitle={Nanomechanical Analysis of High Performance Materials}, publisher={Springer Netherlands}, author={Pittenger, Bede and Erina, Natalia and Su, Chanmin}, year={2013}, month=aug, pages={31–51} }