The influences of the interactions between disparate phases on the Brill transition of nylon crystals
碩士 === 國立成功大學 === 材料科學及工程學系 === 104 === The influences of the interactions between disparate phases on the Brill transition of nylon crystals Kun-Keng Li Jr-Jeng Ruan Department of Material Science and Engineering, National Cheng Kung University SUMMARY The aggregration of PCBM molecules can be a...
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碩士 === 國立成功大學 === 材料科學及工程學系 === 104 === The influences of the interactions between disparate phases on the Brill transition of nylon crystals
Kun-Keng Li
Jr-Jeng Ruan
Department of Material Science and Engineering, National Cheng Kung University
SUMMARY
The aggregration of PCBM molecules can be adjusted by the surface saw-like ledges on HMB crystalline platelets. PCBM molecules can stack along surface ledges to form the oriented parallel arrays. Accroding to XRD and TEM observations, this kind of aggregration induced by Graphoepitaxy can hinder the crystallization of PCBM molecules.
PCBM molecules can epitaxially grow on nylon crystals by lattice matching, forming large-size single crystals. From in-situ WAXS results, such lattice matching makes Brill transition temperature (TB) of nylon 66 increased dramatically, and the d spacing of (100) plane hardly change during the whole heating and cooling processes. As a result, the contact between PCBM crystals and nylon crystals (lattice matching) can restrict Brill transition.
There is a great interaction between PCBM and nylon molecules. After blending into nylon, PCBM molecules will disperse in the amorphous region of nylon lamellae. The Brill transition temperature of nylon crystals enhances with the increasing PCBM blending ratio. Consequently, the development of Brill transition is related to the thermal motion of polymer chains in amorphous region, and the aggregation or dispersion of PCBM molecules in amorphous region will influence the development of rigid amorphous layer and the regularity of lamellar stacking process of nylon crystals.
Key words: Nylon、PCBM、Epitaxy、Brill transition
INTRODUCTION
As a derivative of C60, PCBM is the most commonly used electron-acceptor in organic photovoltaics. It is important to develop continuous PCBM single crystals for device performance, but PCBM tend to aggregrate irregularly and distribute uncontinuously in the film.
Epitaxy is an efficient method to control the crystallization of PCBM molecules. Due to the high melting point and crystallization temperature of PCBM, we choose nylon as substrate which can bare this high temperature epitaxy process to develop a large-size and continuous PCBM single crystals.
With the change of temperature, nylon will transform room temperature crystal structure into high temperature crystal structure, which is known as Brill transition in nylon materials. In this research, we develop continuous PCBM single crystals by epitaxy, and analyze the change of Brill transition and lamellar stacking process of nylon crystals caused by such kind of epitaxy and the blending effect
MATERIALS AND METHODS
Preparation of nylon and PCBM solutions
We use formic acid as the solvent for nylon, and chloroform for PCBM. Weighing nylon46, nylon66 and PCBM first, then add different solvents to these solutes, respectively. Make sure the solutes dissolved completely by ultrasonication. Then mix nylon and PCBM solutions together depending on different ratio.
Preparation of in-situ WAXS, SAXS and IR samples
Drop the nylon and PCBM mixing solution on glass at 70 oC, make solution evaporized rapidly to avoid the phase separation. Then collect the film to do in-situ WAXS and SAXS observations. Cut the film into powder and mix with KBr, pressed into the standard sample to do in-situ IR experiment.
Preparation of TEM samples
PCBM solution is spin coated on directional nylon substrates with the two-step method. The first step speed is 500 r.p.m. for 20 seconds to control the film thickness, the second step speed is 2000 r.p.m. for 30 seconds to evaporize the solvents. After the spin coating process, we anneal samples at high temperature to develop epitaxial crystallization of PCBM on nylon substrates, then coat a carbon layer on the samples. Use PAA sticking on the film then standing for 1 day, then remove steam in vacuum oven. Finally pull down PAA and place into deionized water upside down for 1 day to make PAA dissolved, then scoop up the film by cupper grids and remove steam again to do TEM observation.
RESULTS AND DISCUSSION
The interaction between two crystalline phases
The melting state of HMB can serve as solvent for PCBM, during cooling process, HMB crystalized first as substrate. Subsequently annealed at 140 oC for 1 hour, PCBM molecules can stack along surface ledges on HMB crystalline platelets to form the oriented parallel arrays. Accroding to XRD and TEM observations, the crystallinity of PCBM becomes weaker after grew on HMB. In general, most epitaxy can help to develop the crystallization, but this kind of aggregration induced by Graphoepitaxy hinder the crystallization of PCBM molecules. We speculate that the oblique crystalline planes of HMB surface ladges will effect the aggregration of PCBM molecules.
PCBM solution is spin coated on directional nylon substrates, and the consequent high temperature annealing makes PCBM epitaxially grow on nylon to form directional PCBM single crystals. The ab plane of PCBM crystals serve as contact plane with ac plane of nylon crystals. Packing of PCBM along the b-axis matches with interchain distance along the a-axis of nylon crystals, which generates very small mismatch ratio of 2.3% in crystallographic b-axis of PCBM crystals on nylon46, although a somewhat large mismatch of 3.4% in b-axis
is obtained on nylon66.
After the epitaxial growth of PCBM crystals on nylon66 crystals, the Brill transition temperature of nylon66 dramatically increased to 220 oC. In addition, the d spacing of (100) plane barely change during the whole heating and cooling processes, the lattice dimension along the a-axis remains constant. However, the (010)/(110) peak shifts to lower angle and disappears, the expansion of lattice dimension along the b-axis accompanied with the loss of periodicity. We speculate that without lattice interactions, the d(100) is decreased upon heating, which restricts the thermal motion of CH2 segments and maintains the regular stacking of ac plane. With the presence of lattice interactions, on the other hand, the d(100) is fixed upon heating and not able to decrease, and therefore a larger space is available for the thermal motion of CH2 segments. In this case, the continuous increase of segmental thermal motion can cause the stacking of ac plane less regular along the b-axis.
The effect of the interaction between crystalline phase and amorphous phase on Brill transition
We are also interested in the blending effect of PCBM. After blend with PCBM, the Brill transition temperature of both nylon46 and nylon66 increase, changing with the blending ratio. We exclude the possibility of intercalation of PCBM molecules into nylon crystals according to in-situ IR and WAXS observation, and confirm such blending effect is caused by the dispersion or aggregration of PCBM molecules in amorphous region of nylon. On the other hand, the aggregation or dispersion of PCBM molecules in amorphous region will influence the development of rigid amorphous layer and the regularity of lamellar stacking process of nylon crystals. The lamellar stacking of nylon crystals change from reversible process of pure nylon to irreversible process of the blending systems.
CONCLUSION
PCBM molecules can stack along surface ledges to form the oriented parallel arrays. Accroding to XRD and TEM observations, this kind of aggregration induced by Graphoepitaxy can hinder the crystallization of PCBM molecules.
PCBM molecules can epitaxially grow on nylon crystals by lattice matching, forming large-size single crystals, and such lattice matching makes Brill transition temperature (TB) of nylon 66 increased dramatically, and the d spacing of (100) plane hardly change during the whole heating and cooling processes.
The Brill transition temperature of nylon crystals enhances with the increasing PCBM blending ratio, and the aggregation or dispersion of PCBM molecules in amorphous region will influence the development of rigid amorphous layer and the regularity of lamellar stacking process of nylon crystals.
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author2 |
Jr-Jeng Ruan |
author_facet |
Jr-Jeng Ruan Kun-KengLi 李昆耿 |
author |
Kun-KengLi 李昆耿 |
spellingShingle |
Kun-KengLi 李昆耿 The influences of the interactions between disparate phases on the Brill transition of nylon crystals |
author_sort |
Kun-KengLi |
title |
The influences of the interactions between disparate phases on the Brill transition of nylon crystals |
title_short |
The influences of the interactions between disparate phases on the Brill transition of nylon crystals |
title_full |
The influences of the interactions between disparate phases on the Brill transition of nylon crystals |
title_fullStr |
The influences of the interactions between disparate phases on the Brill transition of nylon crystals |
title_full_unstemmed |
The influences of the interactions between disparate phases on the Brill transition of nylon crystals |
title_sort |
influences of the interactions between disparate phases on the brill transition of nylon crystals |
publishDate |
2016 |
url |
http://ndltd.ncl.edu.tw/handle/86047523784883424491 |
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ndltd-TW-104NCKU51591782017-10-01T04:30:11Z http://ndltd.ncl.edu.tw/handle/86047523784883424491 The influences of the interactions between disparate phases on the Brill transition of nylon crystals 相與相之間的交互作用對耐綸分子晶相結構演變的影響 Kun-KengLi 李昆耿 碩士 國立成功大學 材料科學及工程學系 104 The influences of the interactions between disparate phases on the Brill transition of nylon crystals Kun-Keng Li Jr-Jeng Ruan Department of Material Science and Engineering, National Cheng Kung University SUMMARY The aggregration of PCBM molecules can be adjusted by the surface saw-like ledges on HMB crystalline platelets. PCBM molecules can stack along surface ledges to form the oriented parallel arrays. Accroding to XRD and TEM observations, this kind of aggregration induced by Graphoepitaxy can hinder the crystallization of PCBM molecules. PCBM molecules can epitaxially grow on nylon crystals by lattice matching, forming large-size single crystals. From in-situ WAXS results, such lattice matching makes Brill transition temperature (TB) of nylon 66 increased dramatically, and the d spacing of (100) plane hardly change during the whole heating and cooling processes. As a result, the contact between PCBM crystals and nylon crystals (lattice matching) can restrict Brill transition. There is a great interaction between PCBM and nylon molecules. After blending into nylon, PCBM molecules will disperse in the amorphous region of nylon lamellae. The Brill transition temperature of nylon crystals enhances with the increasing PCBM blending ratio. Consequently, the development of Brill transition is related to the thermal motion of polymer chains in amorphous region, and the aggregation or dispersion of PCBM molecules in amorphous region will influence the development of rigid amorphous layer and the regularity of lamellar stacking process of nylon crystals. Key words: Nylon、PCBM、Epitaxy、Brill transition INTRODUCTION As a derivative of C60, PCBM is the most commonly used electron-acceptor in organic photovoltaics. It is important to develop continuous PCBM single crystals for device performance, but PCBM tend to aggregrate irregularly and distribute uncontinuously in the film. Epitaxy is an efficient method to control the crystallization of PCBM molecules. Due to the high melting point and crystallization temperature of PCBM, we choose nylon as substrate which can bare this high temperature epitaxy process to develop a large-size and continuous PCBM single crystals. With the change of temperature, nylon will transform room temperature crystal structure into high temperature crystal structure, which is known as Brill transition in nylon materials. In this research, we develop continuous PCBM single crystals by epitaxy, and analyze the change of Brill transition and lamellar stacking process of nylon crystals caused by such kind of epitaxy and the blending effect MATERIALS AND METHODS Preparation of nylon and PCBM solutions We use formic acid as the solvent for nylon, and chloroform for PCBM. Weighing nylon46, nylon66 and PCBM first, then add different solvents to these solutes, respectively. Make sure the solutes dissolved completely by ultrasonication. Then mix nylon and PCBM solutions together depending on different ratio. Preparation of in-situ WAXS, SAXS and IR samples Drop the nylon and PCBM mixing solution on glass at 70 oC, make solution evaporized rapidly to avoid the phase separation. Then collect the film to do in-situ WAXS and SAXS observations. Cut the film into powder and mix with KBr, pressed into the standard sample to do in-situ IR experiment. Preparation of TEM samples PCBM solution is spin coated on directional nylon substrates with the two-step method. The first step speed is 500 r.p.m. for 20 seconds to control the film thickness, the second step speed is 2000 r.p.m. for 30 seconds to evaporize the solvents. After the spin coating process, we anneal samples at high temperature to develop epitaxial crystallization of PCBM on nylon substrates, then coat a carbon layer on the samples. Use PAA sticking on the film then standing for 1 day, then remove steam in vacuum oven. Finally pull down PAA and place into deionized water upside down for 1 day to make PAA dissolved, then scoop up the film by cupper grids and remove steam again to do TEM observation. RESULTS AND DISCUSSION The interaction between two crystalline phases The melting state of HMB can serve as solvent for PCBM, during cooling process, HMB crystalized first as substrate. Subsequently annealed at 140 oC for 1 hour, PCBM molecules can stack along surface ledges on HMB crystalline platelets to form the oriented parallel arrays. Accroding to XRD and TEM observations, the crystallinity of PCBM becomes weaker after grew on HMB. In general, most epitaxy can help to develop the crystallization, but this kind of aggregration induced by Graphoepitaxy hinder the crystallization of PCBM molecules. We speculate that the oblique crystalline planes of HMB surface ladges will effect the aggregration of PCBM molecules. PCBM solution is spin coated on directional nylon substrates, and the consequent high temperature annealing makes PCBM epitaxially grow on nylon to form directional PCBM single crystals. The ab plane of PCBM crystals serve as contact plane with ac plane of nylon crystals. Packing of PCBM along the b-axis matches with interchain distance along the a-axis of nylon crystals, which generates very small mismatch ratio of 2.3% in crystallographic b-axis of PCBM crystals on nylon46, although a somewhat large mismatch of 3.4% in b-axis is obtained on nylon66. After the epitaxial growth of PCBM crystals on nylon66 crystals, the Brill transition temperature of nylon66 dramatically increased to 220 oC. In addition, the d spacing of (100) plane barely change during the whole heating and cooling processes, the lattice dimension along the a-axis remains constant. However, the (010)/(110) peak shifts to lower angle and disappears, the expansion of lattice dimension along the b-axis accompanied with the loss of periodicity. We speculate that without lattice interactions, the d(100) is decreased upon heating, which restricts the thermal motion of CH2 segments and maintains the regular stacking of ac plane. With the presence of lattice interactions, on the other hand, the d(100) is fixed upon heating and not able to decrease, and therefore a larger space is available for the thermal motion of CH2 segments. In this case, the continuous increase of segmental thermal motion can cause the stacking of ac plane less regular along the b-axis. The effect of the interaction between crystalline phase and amorphous phase on Brill transition We are also interested in the blending effect of PCBM. After blend with PCBM, the Brill transition temperature of both nylon46 and nylon66 increase, changing with the blending ratio. We exclude the possibility of intercalation of PCBM molecules into nylon crystals according to in-situ IR and WAXS observation, and confirm such blending effect is caused by the dispersion or aggregration of PCBM molecules in amorphous region of nylon. On the other hand, the aggregation or dispersion of PCBM molecules in amorphous region will influence the development of rigid amorphous layer and the regularity of lamellar stacking process of nylon crystals. The lamellar stacking of nylon crystals change from reversible process of pure nylon to irreversible process of the blending systems. CONCLUSION PCBM molecules can stack along surface ledges to form the oriented parallel arrays. Accroding to XRD and TEM observations, this kind of aggregration induced by Graphoepitaxy can hinder the crystallization of PCBM molecules. PCBM molecules can epitaxially grow on nylon crystals by lattice matching, forming large-size single crystals, and such lattice matching makes Brill transition temperature (TB) of nylon 66 increased dramatically, and the d spacing of (100) plane hardly change during the whole heating and cooling processes. The Brill transition temperature of nylon crystals enhances with the increasing PCBM blending ratio, and the aggregation or dispersion of PCBM molecules in amorphous region will influence the development of rigid amorphous layer and the regularity of lamellar stacking process of nylon crystals. Jr-Jeng Ruan 阮至正 2016 學位論文 ; thesis 68 zh-TW |