Thermoelasticity in organic semiconductors determined with terahertz spectroscopy and quantum quasi-harmonic simulations

被引:20
作者
Banks, Peter A. [1 ]
Maul, Jefferson [2 ]
Mancini, Mark T. [1 ]
Whalley, Adam C. [1 ]
Erba, Alessandro [2 ]
Ruggiero, Michael T. [1 ]
机构
[1] Univ Vermont, Dept Chem, 82 Univ Pl, Burlington, VT 05405 USA
[2] Univ Torino, Dipartimento Chim, Via Giuria 5, I-10125 Turin, Italy
关键词
MOLECULAR-ORBITAL METHODS; MECHANICAL-PROPERTIES; ELASTIC PROPERTIES; THERMAL-EXPANSION; CRYSTALS; NANOINDENTATION; ANHARMONICITY; DYNAMICS; FILMS; TEMPERATURE;
D O I
10.1039/d0tc01676d
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The thermomechanical response of organic semiconducting solids is an essential aspect to consider in the design of materials for advanced applications, and in particular, flexible electronics. The non-covalent intermolecular forces that exist in organic solids not only result in a diverse set of mechanical properties, but also a critical dependence of those same properties on temperature. However, studying the thermoelastic response of solids is experimentally challenging, often requiring large single-crystals and sensitive experimental apparatus. An alternative contactless approach involves using low-frequency vibrational spectroscopy to characterize the underlying intermolecular forces, and then combining this information with solid-state density functional theory simulations to retrieve the mechanical response of materials. This methodology, which only requires poly-micro-crystalline sample (compared to large single-crystals), leverages recent advances in the quasi-harmonic approximation to predict the temperature evolution of crystalline structures, dynamics, and associated forces, and then utilizes this information to determine the elastic tensor as a function of temperature. Here, this methodology is illustrated for two prototypical organic semiconducting crystals, rubrene and BTBT, and suggests a new alternative means to characterizing the thermoelastic response of organic materials.
引用
收藏
页码:10917 / 10925
页数:9
相关论文
共 70 条
[41]   Pressure-driven mechanical anisotropy and destabilization in zeolitic imidazolate frameworks [J].
Maul, Jefferson ;
Ryder, Matthew R. ;
Ruggiero, Michael T. ;
Erba, Alessandro .
PHYSICAL REVIEW B, 2019, 99 (01)
[42]   Improving Predicted Nuclear Magnetic Resonance Chemical Shifts Using the Quasi-Harmonic Approximation [J].
McKinley, Jessica L. ;
Beran, Gregory J. O. .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2019, 15 (10) :5259-5274
[43]   Anisotropy in the mechanical properties of organic crystals: temperature dependence [J].
Mohamed, Reda M. ;
Mishra, Manish Kumar ;
Al-Harbi, Laila M. ;
Al-Ghamdi, Mohammed S. ;
Ramamurty, Upadrasta .
RSC ADVANCES, 2015, 5 (79) :64156-64162
[44]   Elastic and plastic properties of GaN determined by nano-indentation of bulk crystal [J].
Nowak, R ;
Pessa, M ;
Suganuma, M ;
Leszczynski, M ;
Grzegory, I ;
Porowski, S ;
Yoshida, F .
APPLIED PHYSICS LETTERS, 1999, 75 (14) :2070-2072
[45]   Parameter-free predictions of the viscoelastic response of glassy polymers from non-affine lattice dynamics [J].
Palyulin, Vladimir V. ;
Ness, Christopher ;
Milkus, Rico ;
Elder, Robert M. ;
Sirk, Timothy W. ;
Zaccone, Alessio .
SOFT MATTER, 2018, 14 (42) :8475-8482
[46]   The calculation of the vibrational frequencies of crystalline compounds and its implementation in the CRYSTAL code [J].
Pascale, F ;
Zicovich-Wilson, CM ;
Gejo, FL ;
Civalleri, B ;
Orlando, R ;
Dovesi, R .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2004, 25 (06) :888-897
[47]  
Perdew JP, 1997, PHYS REV LETT, V78, P1396, DOI 10.1103/PhysRevLett.77.3865
[48]   Ab-initio calculation of elastic constants of crystalline systems with the CRYSTAL code [J].
Perger, W. F. ;
Criswell, J. ;
Civalleri, B. ;
Dovesi, R. .
COMPUTER PHYSICS COMMUNICATIONS, 2009, 180 (10) :1753-1759
[49]   Stretchable Organic Semiconductor Devices [J].
Qian, Yan ;
Zhang, Xinwen ;
Xie, Linghai ;
Qi, Dianpeng ;
Chandran, Bevita K. ;
Chen, Xiaodong ;
Huang, Wei .
ADVANCED MATERIALS, 2016, 28 (42) :9243-9265
[50]   Thermal Expansion Study as a Tool to Understand the Bending Mechanism in a Crystal [J].
Rather, Sumair A. ;
Saha, Binoy K. .
CRYSTAL GROWTH & DESIGN, 2018, 18 (05) :2712-2716