Comb-coil supramolecular crosslinked polymer
09850337 · 2017-12-26
Assignee
Inventors
- Asha Syamakumari (Pune, IN)
- Rekha Narayan (Pune, IN)
- Shekhar Shinde (Pune, IN)
- Saibal Bhaumik (Pune, IN)
Cpc classification
C08L65/00
CHEMISTRY; METALLURGY
C08G2261/1642
CHEMISTRY; METALLURGY
C08G2261/1644
CHEMISTRY; METALLURGY
C08L39/08
CHEMISTRY; METALLURGY
C08F271/02
CHEMISTRY; METALLURGY
International classification
C08F271/02
CHEMISTRY; METALLURGY
C08L65/00
CHEMISTRY; METALLURGY
Abstract
The present invention relates to a facile process for the preparation of non-covalently cross-linked self-assembled perylene bisimide nano structures using hydrogen bonding interactions with poly-4-vinyl pyridine or oligophenylene vinylene (OPV) as structural motif.
Claims
1. A facile process for the preparation of self-organized non-covalently cross-linked perylene bisimide nanostructures comprising: a) complexing pentadecylphenol perylene bisimide with poly-4-vinyl pyridine or oligophenylene vinylene (OPV) in presence of solvent under stirring for a period ranging between 2 to 24 hrs at a temperature of 30-60° C. to give comb-coil supramolecular complex; b) photoinitiated polymerization of comb-coil supramolecular complex as obtained in step (a) in presence of photoinitiator under UV radiation for a period ranging between 5-15 mins at interval ranging between 5-90 seconds using a UV curing spot lamp to obtain said self-organized cross-linked perylene bisimide nanostructures.
2. The process according to the claim 1, wherein the pentadecylphenol perylene bisimide used in step (a) is selected from the group consisting of symmetrical pentadecylphenol perylene bisimide [SPDP-PBI], and unsymmetrical pentadecylphenol perylene bisimide.
3. The process according to claim 2, wherein said unsymmetrical pentadecylphenol perylene bisimide is ethyl-hexyl pentadecylphenol perylene bisimide [UEHPDP-PBI].
4. The process according to claim 2, wherein said unsymmetrical pentadecylphenol perylene bisimide is alkyl or aryl methacrylate derivative of said pentadecylphenol perylene bisimide.
5. The process according to claim 1, wherein the pentadecylphenol perylene bisimide possesses linear or branched C6-C20 alkyl chain at one end and the other end is an amino pyridine group.
6. The process according to claim 1, wherein OPV used in step (a) is unsymmetrical OPV with a H bonding group selected from —OH, —COOH at one end and a polymerizable group selected from acrylate or methacrylate group at the other end.
7. The process according to claim 1, wherein solvent used in step (a) is selected from the group consisting of chloroform, dichloromethane, dimethylformamide, tetrahydrofuran.
8. The process according to claim 1, wherein the photo initiator used in step (b) is 2,2-diethoxy acetophenone.
9. The process according to claim 1, wherein mol ratio of pentadecylphenol perylene bisimide and poly-4-vinyl pyridine or oligophenylene vinylene is in the range of 1:0.25 to 1:1.
10. The process according to claim 1, wherein size of self-organized cross-linked perylene bisimide nanostructures is in the range of 5-15 nm.
11. The process as claimed in claim 1, wherein said comb coil supra molecular complex comprises a polymerizable functionality selected from the group consisting of acrylates or methacrylates at one end.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4) Whereas in the case of the unsymmetric amphiphile UEHPDP-PBI, the packing distance remained almost same in both cases viz., the complex as well as independent molecule.
(5)
(6)
(7)
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(9)
(10)
DETAILED DESCRIPTION
(11) The present invention provides Perylenebisimide (PBI) and naphthalene bisimide (NBI) derivatives and oligophenylene vinylene (OPV) derivatives, photoactive materials that are used in OFETS and solar cells.
(12) In one aspect, the invention discloses supramolecular complex formation between PBI derivatives and hydrogen bondable preformed commercially available polymers such as poly(4-vinyl pyridine) [P4VP], Polystyrene-b-poly(4-vinyl pyridine) (PS-b-P4VP), Poly(acrylic acid) (PAA), Polystyrene-b-Poly(acrylic acid) (PS-b-PAA), Poly(vinyl phenol) (PVPh) or Polystyrene-b-Poly(vinyl phenol) (PS-b-PVPh).
(13) The PBI was functionalized in such a way as to have supramolecular complex formation possible only at one termini, or at both termini which then resulted in non-covalently crosslinked supramolecular complex.
(14) The supramoleculary organized PBI was then subjected to polymerization (by photocuring). The formation of the hydrogen bonded supramolecular polymer PBI was proven by various experimental techniques like FTIR, .sup.1H NMR spectroscopy, and WXRD.
(15) Hydrogen bonded complex formation was not possible with PBI which were not suitably functionalized.
(16) In another aspect of the invention, suitably functionalized oligophenylene vinylene (OPV) derivative was complexed by hydrogen bonding interaction with complementarily functionalized perylenebisimide derivative. This donor-acceptor supramolecular complex was further subjected to photopolymerization to obtain donor-acceptor polymer complex.
(17) The formation of hydrogen bonded supramolecular OPV-PBI donor-acceptor complex was confirmed by experimental techniques like .sup.1H NMR spectroscopy. The polymerization of this supramolecular complex was also confirmed by .sup.1H NMR spectroscopy. Microscopic techniques like Transmission Electron Microscope (TEM) confirmed the higher ordering in the supramolecular complex after polymerization.
(18) Poly(4-vinyl pyridine) P4VP has a basic nitrogen atom which can form hydrogen bonding linkage with proton donating units such as hydroxyl, carboxyl and such like. For the complexing system comprising long alkyl chains with strong hydrogen bonding such systems are considered as comb-coil polymers. The hydrogen bonding is a direction specific interaction. If the hydrogen bonding is coupled with the natural tendency of aromatic moieties like perylene or naphthalene bisimides (PBI/NBI) to form pi stacking interactions then this can result in hierarchical organization of PBI/NBI.
(19) The invention discloses P4VP/PBI supramolecular complexes to form comb-coil structures of PBI and P4VP.
(20) The suitably functionalized PBI derivatives are selected from symmetrical or unsymmetrical PBI derivatives, with one of the functionalities being hydroxyl group or carboxyl group suitable for hydrogen bonding interaction with P4VP.
(21) The synthesis of PBI containing supramolecular complex, followed by crosslinking is shown below in scheme 1.
(22) ##STR00001##
(23) The PBI containing polymer thus obtained would be further evaluated for its applications in OFET and solar cells.
(24) A facile process for the preparation of self-organized cross-linked perylene bisimide nanostructures comprising: a. complexing the perylene bisimide derivative with poly-4-vinyl pyridine or OPV in 1:1, 1:0.75, 1:0.50, 1:0.25 mole ratio presence of solvent at a temperature of 30-60° C. to give comb-coil supramolecular complex; b. Photoinitiated polymerization of comb-coil supramolecular complex in presence of photoinitiator to obtain said self-organized non-covalently cross-linked perylene bisimide nanostructures.
(25) The perylene bisimide derivative for the facile process disclosed herein is selected from the group consisting of symmetrical pentadecylphenyl perylene bisimide [SPDP-PBI], and unsymmetrical pentadecylphenyl perylene bisimide.
(26) The unsymmetrical pentadecylphenyl perylene bisimide is ethyl-hexyl pentadecylphenyl perylene bisimide [UEHPDP-PBI].
(27) The unsymmetrical pentadecylphenyl perylene bisimide is alkyl or aryl methacrylate derivative of said pentadecylphenyl perylene bisimide.
(28) The OPV is unsymmetrical OPV with a H bonding group selected from —OH, —COOH at one end and a polymerizable group selected from acrylate or methacrylate group at the other end.
(29) The perylene bisimide possesses linear or branched C6-C20 alkyl chain at one end and the other end is an amino pyridine group.
(30) The following examples are given by way of illustration of the present invention and should not be construed to limit the scope of the present invention.
EXAMPLES
Example 1
Synthesis of Comb-Coil Supramolecular Complex of P4VP and Unsymmetrical PBI (UEHPDP-PBI) (where R′=Branched Alkyl Chain and R=Pentadecyphenol)
(31) ##STR00002##
Sample Preparation:
poly4-vinyl pyridine (P4VP) (10 mg) and UEHPDP-PBI (unsymmetrical ethylhexylpentadecylphenyl) (76 mg) were dried at 60° C. in vacuum oven for 2 days and stored in vacuum dessicator. UEHPDP-PBI was first dissolved in dimethyl formamide (DMF) (0.8 wt %) until a clear solution was obtained. P4VP was added subsequently followed by mechanical stirring for 1 hr at 60° C., until clear solution was got. DMF was then evaporated on a hot plate at 70° C. The complexes were then dried at 60° C. in vacuum oven to remove traces of DMF, thereafter stored in dessicator.
Example 2 Synthesis of Supramolecular Crosslinkable Complex of P4VP and Symmetrical PBI (SPDP-PBI) (where R′═R=Pentadecylphenol)
(32) ##STR00003##
Sample Preparation:
P4VP (10 mg) and SPDP-PBI (symmetricalpentadecylphenyl) (47 mg) were dried at 60° C. in vacuum oven for 2 days and stored in vacuum dessicator. SPDP-PBI was first dissolved in DMF (0.8 wt %) until a clear solution was obtained. P4VP was added subsequently followed by mechanical stirring for 1 hr at 60° C., until clear solution was got. DMF was then evaporated on a hot plate at 70° C. The complexes were then dried at 60° C. in vacuum oven to remove traces of DMF, thereafter stored in dessicator.
Example 3
Synthesis of Supramolecular Crosslinkable Complex of P4VP and Unsymmetrical PBI (where R′=acrylate moiety and R=Pentadecyphenol)
(33) ##STR00004##
Sample Preparation:
P4VP (0.4 mg) and unsymmetrical PBI (UPDPHAPDP-PBI) with the polymerizable acrylate moiety (5 mg) were dissolved in dry DCM (2 ml). Solution was heated at 50° C. for 1 hour to obtain homogeneous solution. Stirring was continued at room temperature under inert atmosphere for 24 hours. The complex was dried in vacuum oven and stored in dessicator.
Example 4 UV Induced Polymerization of P4VP-PBI Complex
(34) Sample Preparation:
(35) The UV curing was carried out in an NMR tube. To the NMR tube containing complex UPDPHAPDP-PBI (5 mg) in 1 ml CDCl.sub.3, photoinitiator (2,2-diethoxy acetophenone) (5 wt %) was added and .sup.1HNMR spectra was recorded before curing experiment. The NMR tube was kept under UV probe and irradiated for 15 minute with the interval of 10 seconds using DYMAX Blue wave 75 UV curing spot lamp provided with a light guide of 5 mm diameter and a 75 watt high pressure short-arc bulb with an initial lamp intensity of 19 W/cm.sup.2 emitting primarily in the UVA and blue visible light range of 280-450 nm to ensure complete reaction of acrylate moiety. Resultant solution was subjected for .sup.1HNMR analysis.
(36) ##STR00005##
Example 5 Synthesis of Supramolecular Crosslinkable Complex of OPV Containing Polymerizable Methacrylate Moiety at One End and Phenolic Group at the Other End and Unsymmetrical PBI (UODAp-PBI) Containing Hydrogen Bondable Pyridine Unit at One End and Branched Alkyl Chains at the Other End
(37) ##STR00006##
Sample Preparation:
oligophenylene vinylene (OPV) (2.8 mg) and UODAp-PBI (unsymmetrical octyl dodesyl aminopyridine) (5.3 mg) were dried at 60° C. in vacuum oven for 2 days and stored in vacuum dessicator. UODAp-PBI and OPV were first dissolved in dimethyl formamide (DMF) at 90° C. until a clear solution was obtained followed by two days stirring at 65° C. DMF was then evaporated inside the vacuum desecrator at room temperature. The complexes were then dried at 60° C. in vacuum oven to remove traces of DMF and stored in dessicator.
Example 6 UV Induced Polymerization of P4VP-UODAp-PBI Complex
(38) ##STR00007##
Sample Preparation: The UV Curing was Carried Out in an NMR Tube.
(39) To the NMR tube containing complex (5 mg) in 1 ml CDCl.sub.3, photoinitiator (2,2-diethoxy acetophenone) (5 wt %) was added and .sup.1HNMR spectra was recorded before curing experiment. The NMR tube was kept under UV probe and irradiated for 15 minute with the interval of 10 seconds to ensure complete reaction of acrylate moiety. Resultant solution was subjected for .sup.1HNMR analysis.
ADVANTAGES OF THE INVENTION
(40) Short process to arrive at described nano structures Process is simple and facile Rate and efficiency of polymerization is faster The crystallinity of nano structures is retained