Surface Equilibration Mechanism Controls the Stability of a Model Codeposited Glass Mixture of Organic Semiconductors

Date
2023-05-02Author
Cheng, Shinian
Lee, Yejung
Yu, Junguang
Yu, Lian
Ediger, M.D.
Metadata
Show full item recordAbstract
While previous work has identified the conditions for preparing ultrastable singlecomponent organic glasses by physical vapor deposition (PVD), little is known about the stability of
codeposited mixtures. Here, we prepared binary PVD glasses of organic semiconductors, TPD (N,N′-
Bis(3-methylphenyl)-N,N′-diphenylbenzidine) and m-MTDATA (4,4′,4″-Tris[phenyl(m-tolyl)-
amino]triphenylamine), with a 50:50 mass concentration over a wide range of substrate temperatures
(Tsub). The enthalpy and kinetic stability are evaluated with differential scanning calorimetry and
spectroscopic ellipsometry. Binary organic semiconductor glasses with exceptional thermodynamic and
kinetic stability comparable to the most stable single-component organic glasses are obtained when
deposited at Tsub = 0.78−0.90Tg (where Tg is the conventional glass transition temperature). When
deposited at 0.94Tg, the enthalpy of the m-MTDATA/TPD glass equals that expected for the
equilibrium liquid at that temperature. Thus, the surface equilibration mechanism previously advanced
for single-component PVD glasses is also applicable for these codeposited glasses. These results
provide an avenue for designing high-performance organic electronic devices.
Subject
Amorphous materials
Deposition
Mixtures
Stability
Physical vapor deposition
Permanent Link
http://digital.library.wisc.edu/1793/84363Type
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