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- W2036767608 abstract "Lamellar single crystals grown in dilute solutions can be used as templates for tethered chain analysis. Two series of diblock copolymers, poly(ethylene oxide)-block-polystyrene (PEO-b-PS) and poly(l-lactic acid)-block-polystyrene (PLLA-b-PS), were used as model templates to generate tethered PS blocks on the single-crystal basal surfaces. Controlled and tunable reduced tethering density, σ, defined by σπRg2 (where σ is the tethered chain density and is equal to the reciprocal of the covered area of the chain and Rg is the radius of gyration of this tethered chain in its end-free state at the same conditions), could be achieved in a broad range (up to 24) by changing the molecular weights (MW's) of the crystalline and amorphous blocks and by varying the crystallization temperature (Tx) of different PEO-b-PS and PLLA-b-PS solutions. For PEO and PLLA homopolymers crystallized in dilute solutions, the lamellar crystal thicknesses (dCRYST) were observed to be proportional to the reciprocal undercooling ΔT (where ΔT = Td − Tx and Td is the equilibrium dissolution temperature of the crystals). The σ of the tethered PS chains on the crystal surface increased with decreasing ΔT because at a fixed MW of the PEO or PLLA block, an increase in the dCRYST was evidence of a decrease in the number of folds. When we plotted the relationships between 1/dCRYST and Tx for these two series of diblock copolymers, sudden and discontinuous changes of the slopes in some of these were observed at σ = 3.7 (σ*). This was as a result of the drastic interaction change of the neighboring PS tethered chains. An average reduced surface free energy of the tethered PS chains (ΓPS) was defined and used as a parameter to characterize the PS tethered chain interactions. The relationship between ΓPS and σ showed a discontinuous transition at σ*, which had a close similarity to the hard-sphere-like interaction model. This could be identified as the onset of the tethered PS chain overcrowding in solution. This transition indicates that the extra entropic surface free energy created by the repulsion of tethered PS chains started to affect the nucleation barrier of the PEO or PLLA block crystallization. On the basis of the scaling laws, the onset of highly stretched brush regime could be identified at σ = 14.3 (σ**). In the ΓPS vs σ plot, the transition appears to be continuous. Thus, a crossover regime in the tethered PS chains exists between σ* = 3.7 and σ** = 14.3. It is defined as the regime where the interaction of the tethered PS chains undergoes changes from being noninteracting toward penetration to, finally, chain stretching normal to the surface." @default.
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- W2036767608 date "2005-12-30" @default.
- W2036767608 modified "2023-10-03" @default.
- W2036767608 title "Onsets of Tethered Chain Overcrowding and Highly Stretched Brush Regime via Crystalline−Amorphous Diblock Copolymers" @default.
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- W2036767608 cites W1963863472 @default.
- W2036767608 cites W1964305961 @default.
- W2036767608 cites W1965537738 @default.
- W2036767608 cites W1965813613 @default.
- W2036767608 cites W1974151832 @default.
- W2036767608 cites W1979911462 @default.
- W2036767608 cites W1980789543 @default.
- W2036767608 cites W1993264549 @default.
- W2036767608 cites W1996328865 @default.
- W2036767608 cites W1999265109 @default.
- W2036767608 cites W2002202076 @default.
- W2036767608 cites W2006432483 @default.
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- W2036767608 cites W2008651265 @default.
- W2036767608 cites W2008870349 @default.
- W2036767608 cites W2010364549 @default.
- W2036767608 cites W2011450733 @default.
- W2036767608 cites W2012834006 @default.
- W2036767608 cites W2027301701 @default.
- W2036767608 cites W2029614168 @default.
- W2036767608 cites W2030247671 @default.
- W2036767608 cites W2035994280 @default.
- W2036767608 cites W2040723875 @default.
- W2036767608 cites W2041218941 @default.
- W2036767608 cites W2041248413 @default.
- W2036767608 cites W2043370280 @default.
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- W2036767608 cites W2059655127 @default.
- W2036767608 cites W2061862770 @default.
- W2036767608 cites W2062403170 @default.
- W2036767608 cites W2062727915 @default.
- W2036767608 cites W2065000045 @default.
- W2036767608 cites W2066952594 @default.
- W2036767608 cites W2069247819 @default.
- W2036767608 cites W2069945841 @default.
- W2036767608 cites W2069960852 @default.
- W2036767608 cites W2070098670 @default.
- W2036767608 cites W2079404244 @default.
- W2036767608 cites W2085781240 @default.
- W2036767608 cites W2086187103 @default.
- W2036767608 cites W2088241495 @default.
- W2036767608 cites W2090430453 @default.
- W2036767608 cites W2090604744 @default.
- W2036767608 cites W2093368721 @default.
- W2036767608 cites W2111000138 @default.
- W2036767608 cites W2113001341 @default.
- W2036767608 cites W2130093942 @default.
- W2036767608 cites W2150940385 @default.
- W2036767608 cites W2153073284 @default.
- W2036767608 cites W2157512061 @default.
- W2036767608 cites W2178116685 @default.
- W2036767608 cites W2332391986 @default.
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- W2036767608 cites W289208098 @default.
- W2036767608 cites W3006911995 @default.
- W2036767608 cites W4238419171 @default.
- W2036767608 doi "https://doi.org/10.1021/ma052166w" @default.
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