TY - JOUR
T1 - Deuteration-Induced Superior Properties in Polymer/Soluble Acene Blends
T2 - A Comprehensive Study
AU - Lee, Jung Hun
AU - Lim, Soohwan
AU - Kim, Minsong
AU - Bae, Heesun
AU - Im, Seongil
AU - Ji, Daechan
AU - Lee, Hoonkyung
AU - Nguyen, Ky Van
AU - Lee, June Hyuk
AU - Anthony, John E.
AU - Jang, Ho Won
AU - Lyu, Jaegeun
AU - Koo, Jaseung
AU - Lee, Wi Hyoung
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/1/15
Y1 - 2025/1/15
N2 - The selection of suitable polymers is pivotal in influencing the electrical performance and the thermal/electrical stabilities of organic electronics. Here, the superior properties induced by deuteration in polymer/2,8-difluoro-5,11-bis(triethylsilylethynyl)anthradithiophene (diF-TES ADT) blends are systematically investigated. By employing a combination of experimental and computational analyses, the critical factors underlying charge transport and device stabilities in deuterated polymers (d-polymers) compared to protonated polymers are elucidated. Deuterated polymers exhibit increased mass due to the substitution of hydrogen with deuterium, reducing the zero-point vibration energy by 1/√2. This reduction leads to enhanced energetic stabilization and the formation of stronger D─C bonds than H─C bonds. Consequently, deuterated polymers exhibit enhanced thermal properties, along with improved insulating properties, which are intrinsically linked to improved device performance. Additionally, the correlation between the electrical properties and bias stability using deuterated poly(methyl methacrylate) (d-PMMA) and polystyrene (d-PS) blends are analyzed. Utilizing complementary neutron & X-ray reflectivity, and photoexcited charge-collection spectroscopy (PECCS), phase separation and trap dynamics are delved, providing a comprehensive understanding of these relationships. These findings reveal that d-polymers significantly enhance the electrical performance and stability of the blends, offering valuable insights for the design of advanced materials in organic electronics.
AB - The selection of suitable polymers is pivotal in influencing the electrical performance and the thermal/electrical stabilities of organic electronics. Here, the superior properties induced by deuteration in polymer/2,8-difluoro-5,11-bis(triethylsilylethynyl)anthradithiophene (diF-TES ADT) blends are systematically investigated. By employing a combination of experimental and computational analyses, the critical factors underlying charge transport and device stabilities in deuterated polymers (d-polymers) compared to protonated polymers are elucidated. Deuterated polymers exhibit increased mass due to the substitution of hydrogen with deuterium, reducing the zero-point vibration energy by 1/√2. This reduction leads to enhanced energetic stabilization and the formation of stronger D─C bonds than H─C bonds. Consequently, deuterated polymers exhibit enhanced thermal properties, along with improved insulating properties, which are intrinsically linked to improved device performance. Additionally, the correlation between the electrical properties and bias stability using deuterated poly(methyl methacrylate) (d-PMMA) and polystyrene (d-PS) blends are analyzed. Utilizing complementary neutron & X-ray reflectivity, and photoexcited charge-collection spectroscopy (PECCS), phase separation and trap dynamics are delved, providing a comprehensive understanding of these relationships. These findings reveal that d-polymers significantly enhance the electrical performance and stability of the blends, offering valuable insights for the design of advanced materials in organic electronics.
KW - complementary neutron and X-ray reflectivity
KW - deuterated polymers
KW - soluble acene/polymer blends
KW - thermal and bias stabilities
KW - trap dynamics
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U2 - 10.1002/adfm.202413904
DO - 10.1002/adfm.202413904
M3 - Article
AN - SCOPUS:85210374959
SN - 1616-301X
VL - 35
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 3
M1 - 2413904
ER -