TY - GEN
T1 - A control-based approach to quantification of rate-dependent elastic modulus of living cell using atomic force microscope
AU - Ren, Juan
AU - Yu, Shiyan
AU - Gao, Nan
AU - Zou, Qingze
PY - 2013
Y1 - 2013
N2 - This paper proposed a control-based approach to in-liquid nanoindentation measurement in mechanical property quantification of soft samples including living cell using atomic force microscope (AFM). Accurate indentation quantification is central to probe-based nanomechanical property measurement as the tip-cell interaction force and the indentation generated are the two most important variables to be measured. The conventional indentation measurement, however, fails to quantify the indentation accurately during the in-liquid nanomechanical measurement as the hydrodynamic force effect is not accounted for. We propose a control-based approach to accurately measure the indentation in liquid on soft sample even when the force load rate varies over a large range. The proposed approach is demonstrated through measuring the indentation and the elastic modulus of mouse embryonic fibroblast (MEF) cell in cell culture media when the force load rate was changed four orders of magnitude and up to hundred Hz range.
AB - This paper proposed a control-based approach to in-liquid nanoindentation measurement in mechanical property quantification of soft samples including living cell using atomic force microscope (AFM). Accurate indentation quantification is central to probe-based nanomechanical property measurement as the tip-cell interaction force and the indentation generated are the two most important variables to be measured. The conventional indentation measurement, however, fails to quantify the indentation accurately during the in-liquid nanomechanical measurement as the hydrodynamic force effect is not accounted for. We propose a control-based approach to accurately measure the indentation in liquid on soft sample even when the force load rate varies over a large range. The proposed approach is demonstrated through measuring the indentation and the elastic modulus of mouse embryonic fibroblast (MEF) cell in cell culture media when the force load rate was changed four orders of magnitude and up to hundred Hz range.
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M3 - Conference contribution
AN - SCOPUS:84883501119
SN - 9781479901777
T3 - Proceedings of the American Control Conference
SP - 4730
EP - 4735
BT - 2013 American Control Conference, ACC 2013
T2 - 2013 1st American Control Conference, ACC 2013
Y2 - 17 June 2013 through 19 June 2013
ER -