Martensitic-like transition between liquid crystalline and crystalline phases of a prototypical discotic organic semiconductor
成果类型:
Article
署名作者:
Khatun, Nurjahan; Khoury, Joe F.; Nkele, Agnes C.; Wang, Lingyu; Zhang, Tieqiong; Paul, Partha P.; Okoli, Paul Chibuike; Shamim, Nabila; Pasquali, Matteo; Bagchi, Kushal
署名单位:
Rice University; Rice University; Rice University; United States Department of Energy (DOE); Stanford University; SLAC National Accelerator Laboratory; Rice University
刊物名称:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
ISSN/ISSBN:
0027-8424; 1091-6490
DOI:
10.1073/pnas.2612044123
发表日期:
2026-09-22
页码:
e2612044123
关键词:
Martensitic transformations
ORGANIC SEMICONDUCTORS
discotic liquid crystals
melt memory
flexible electronics
FIELD-EFFECT TRANSISTORS
ORDER
fabrication
alignment
films
摘要:
Transitions between crystalline phases occur either through the nucleation and growth mechanism, a process that is slow and destructive, or through the diffusion-less and order preserving Martensitic route. We demonstrate here that for canonical discotic organic semiconductor HAT6, the transition between the liquid crystalline columnar hexagonal phase (Col(H)) and the crystalline solid can occur through a mechanism that exhibits the hallmarks of Martensitic transformations: orientational correlations between parent and daughter phases, reversibility, and ultrafast kinetics. To access Martensitic-like solidification, the Col(H) phase of HAT6 is biaxially aligned in microchannels and crystallization is induced on deep supercooling or fast cooling rates. Selection of a Martensitic-like transformation requires cooling rates fast enough to avoid an equilibrium phase transition but slow enough to avoid vitrification. The transition mechanism is studied using a combination of polarized optical microscopy and X-ray scattering. At the largest accessible supercooling, the Col(H) -> Crystal phase transition occurs at speeds of similar to 100 & micro;m/s, which is seven orders of magnitude greater than the theoretical prediction for growth from isotropic melts. Our work suggests that Martensitic-like transformations can occur between liquid crystals and crystals and are therefore more general than previously believed. Further, we demonstrate that Martensitic-like transformations of anchored liquid crystals can be used to grow biaxially aligned crystals of organic molecules over arbitrarily long distances. As macroscopic lattice alignment is desirable for devices like transistors and as several high-performance molecular semiconductors exhibit a Col(H) phase, our results hold general significance for organic electronics.
来源URL: