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ISSN : 1225-0112(Print)
ISSN : 2288-4505(Online)
Applied Chemistry for Engineering Vol.19 No.3 pp.299-303
DOI :

Research Papers : Synthesis and Characterization of Thermally Cross-Linkable Hole Transporting Material Based on Poly(p-phenylenevinylene) Derivative

Ji Young Choi

Abstract

A thermally cross-linkable polymer, poly[(2,5-dimethoxy-1,4-phenylenevinylene)-alt-(1,4-phenylenevinylene)] (Cross-PPV), was synthesized by the Heck coupling reaction. In order for the polymer to be cross-linkable, 20 mol% excess divinylbenzene was added. The chemical structure of Cross-PPV and thermally crosslinked Cross-PPV were confirmed by FT-IR spectroscopy. From the FT-IR, UV-Vis, and PL spectral data, thermally crosslinked Cross-PPV was insoluble in common organic solvents. The HOMO and LUMO energy level of thermally cross-linked Cross-PPV were estimated -5.11 and -2.56 eV, respectively, which were determined by the cyclic voltammetry and UV-Vis spectroscopy. From the energy level data, one can easily notice that thermally crosslinked Cross-PPV can be used for hole injection layer effectively. Bilayer structured device (ITO/crosslinked Cross-PPV/PM-PPV/Al) was fabricated using poly(1,4-phenylenevinylene-(4-dicyanomethylene-4H-pyran)- 2,6-vinylene-1,4-phenylenevinylene-2,5-bis(dodecyloxy)-1,4-phenylenevinylene (PM-PPV) as the emitting layer, which have HOMO and LUMO energy levels of -5.44 eV and -3.48 eV, respectively. The bilayered device had much enhanced the maximum efficiency (0.024 cd/A) and luminescence (45 cd/m2) than those of a single layer device (ITO/PM-PPV/Al, 0.003 cd/A, 3 cd/m2). The enhanced performance originated from that fact that cross-linked Cross-PPV facilitatse the hole injection to the emissive layer and the injected hole and electron from ITO and Al are recombined in emitting layer (PM-PPV) effectively.

연구논문 : 열경화가 가능한 poly(p-phenylenevinylene)계 정공전달 물질의 합성 및 특성

최지영,이봉

초록

열경화가 가능한 PPV유도체인 poly[(2,5-dimethoxy-1,4-phenylenevinylene)-alt-(1,4-phenylenevinylene)] (Cross-PPV)를 Heck coupling 반응을 이용하여 합성하였다. Cross-PPV 박막은 200 에서 경화 시키면 일반적인 유기용매에 용해되지 않는 불용성의 고분자 박막이 된다. 열경화 전 후의 Cross-PPV의 구조는 FT-IR로 확인하였으며 구조의 차이는 크지 않았다. 경화된 Cross-PPV는 일반적인 유기용매에 대하여 내용매성이 강하다. 순환전압전류법과 흡수분광법으로 측정한 경화된 Cross- PPV의 호모 및 루모 에너지 준위는 각각 -5.11 eV와 -2.56 eV으로 ITO로 부터의 정공주입장벽(hole injection barrier)이 작아(약 0.1 eV) 정공주입층으로 효과적으로 사용 할 수 있다. 호모 및 루모 에너지 준위가 각각 -5.44 eV, -3.48 eV인 poly (1,4-phenylenevinylene-(4-dicyanomethylene-4H-pyran)-2,6-vinylene-1,4-phenylene-vinylene-2,5-bis(dodecyloxy)-1,4-phenyle- nevinylene) (PM-PPV)을 발광층으로 사용하여 두층의 구조(bilayer structure)를 갖는 소자(ITO/crosslinked Cross-PPV/PM- PPV/Al)를 제작, 특성을 평가한 결과 최대 효율은 0.024 cd/A, 최대 발광세기는 45 cd/m2으로 단층형 소자(ITO/PM- PPV/Al)(최대 효율 = 0.003 cd/A, 최대 발광세기 = 3 cd/m2)에 비하여 매우 월등한 성능을 나타냄을 확인하였다. 또한 두층의 구조를 가지는 다층형 소자의 발광스펙트럼은 단층형 소자의 발광 스펙트럼과 동일하다. 이러한 사실들로 보아 ITO 및 Al에서 주입된 전자는 모두 발광층인 PM-PPV층에서 재결합(recombination)되어 여기자(exciton)가 형성되는 것으로 사료된다.

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