This title appears in the Scientific Report :
2003
Please use the identifier:
http://dx.doi.org/10.1063/1.1537247 in citations.
Please use the identifier: http://hdl.handle.net/2128/1476 in citations.
Deformation of semiflexible chains
Deformation of semiflexible chains
The force-extension relation and the end-to-end distribution function are calculated in the constant force and constant extension ensemble, respectively, for a semiflexible chain of Gaussian segments. Qualitative differences are found for these quantities when the persistence length is on the order...
Saved in:
Personal Name(s): | Winkler, R. G. |
---|---|
Contributing Institute: |
Theorie II; IFF-TH-II |
Published in: | The @journal of chemical physics, 118 (2003) S. 2919 - 2928 |
Imprint: |
Melville, NY
American Institute of Physics
2003
|
Physical Description: |
2919 - 2928 |
DOI: |
10.1063/1.1537247 |
Document Type: |
Journal Article |
Research Program: |
Kondensierte Materie |
Series Title: |
Journal of Chemical Physics
118 |
Subject (ZB): | |
Link: |
Get full text OpenAccess |
Publikationsportal JuSER |
Please use the identifier: http://hdl.handle.net/2128/1476 in citations.
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520 | |a The force-extension relation and the end-to-end distribution function are calculated in the constant force and constant extension ensemble, respectively, for a semiflexible chain of Gaussian segments. Qualitative differences are found for these quantities when the persistence length is on the order of the chain length. In particular, beyond a certain persistence length, the free energy assumes two extreme values in the constant extension ensemble corresponding to zero force at zero and at a finite extension. The comparison of the force-extension relation with experimental results on DNA exhibits excellent agreement. The approach provides a simple expression for the end-to-end distribution function which is in excellent agreement with Monte Carlo simulations of the Kratky-Porod semiflexible chain model. (C) 2003 American Institute of Physics. | ||
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