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Nanoseparation using density gradien...
~
Sun, Xiaoming.
Nanoseparation using density gradient ultracentrifugation = mechanism, methods and applications /
Record Type:
Language materials, printed : Monograph/item
Title/Author:
Nanoseparation using density gradient ultracentrifugation/ by Xiaoming Sun ... [et al.].
Reminder of title:
mechanism, methods and applications /
other author:
Sun, Xiaoming.
Published:
Singapore :Springer Singapore : : 2018.,
Description:
ix, 110 p. :digital ; : 24 cm.;
Contained By:
Springer eBooks
Subject:
Nanotechnology. -
Online resource:
http://dx.doi.org/10.1007/978-981-10-5190-6
ISBN:
9789811051906
Nanoseparation using density gradient ultracentrifugation = mechanism, methods and applications /
Nanoseparation using density gradient ultracentrifugation
mechanism, methods and applications /[electronic resource] :by Xiaoming Sun ... [et al.]. - Singapore :Springer Singapore :2018. - ix, 110 p. :digital ;24 cm. - SpringerBriefs in molecular science,2191-5407. - SpringerBriefs in molecular science..
This book introduces the classification and mechanism of density gradient ultracentrifugation (DGUC) method with rich examples showing the versatility of such an efficient separation technique. It also gives a strict mathematical description and a computational optimization model to predict the best separation parameters for a given colloidal system. The concept of "Lab in a tube" is proposed in the last chapter, which allows the size-property relationship investigation, synthetic optimization and reaction/assembly mechanism exploration etc.
ISBN: 9789811051906
Standard No.: 10.1007/978-981-10-5190-6doiSubjects--Topical Terms:
557660
Nanotechnology.
LC Class. No.: T174.7
Dewey Class. No.: 620.5
Nanoseparation using density gradient ultracentrifugation = mechanism, methods and applications /
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mechanism, methods and applications /
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This book introduces the classification and mechanism of density gradient ultracentrifugation (DGUC) method with rich examples showing the versatility of such an efficient separation technique. It also gives a strict mathematical description and a computational optimization model to predict the best separation parameters for a given colloidal system. The concept of "Lab in a tube" is proposed in the last chapter, which allows the size-property relationship investigation, synthetic optimization and reaction/assembly mechanism exploration etc.
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Chemistry and Materials Science (Springer-11644)
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