Access the full text.
Sign up today, get DeepDyve free for 14 days.
P. Gallo, T. Sumigawa, T. Kitamura, F. Berto (2018)
Static assessment of nanoscale notched silicon beams using the averaged strain energy density methodTheoretical and Applied Fracture Mechanics
(2014)
Fatigue Fract
J. Tsai, S. Tzeng, Y. Tzou (2009)
Characterizing the fracture parameters of a graphene sheet using atomistic simulation and continuum mechanicsInternational Journal of Solids and Structures, 47
Paulo Branicio, D. Srolovitz (2009)
Local stress calculation in simulations of multicomponent systemsJ. Comput. Phys., 228
Hsiao-Yu Chang, M. Yogeesh, R. Ghosh, A. Rai, A. Sanne, Shixuan Yang, N. Lu, S. Banerjee, D. Akinwande (2016)
Large‐Area Monolayer MoS2 for Flexible Low‐Power RF Nanoelectronics in the GHz RegimeAdvanced Materials, 28
A. Mattoni, L. Colombo, F. Cleri (2004)
Atomistic study of the interaction between a microcrack and a hard inclusion inβ−SiCPhysical Review B, 70
A. Griffith
The Phenomena of Rupture and Flow in SolidsPhilosophical Transactions of the Royal Society A, 221
M. Hopcroft, W. Nix, T. Kenny (2010)
What is the Young's Modulus of Silicon?Journal of Microelectromechanical Systems, 19
N. Bernstein, D. Hess (2003)
Lattice trapping barriers to brittle fracture.Physical review letters, 91 2
Johannes Möller, E. Bitzek, R. Janisch, Hamad Hassan, A. Hartmaier (2018)
Fracture ab initio: A force-based scaling law for atomistically informed continuum modelsJournal of Materials Research, 33
(2004)
Quantized fracture mechanics
Kai Huang, T. Shimada, Naoki Ozaki, Youhei Hagiwara, T. Sumigawa, Licheng Guo, T. Kitamura (2017)
A unified and universal Griffith-based criterion for brittle fractureInternational Journal of Solids and Structures, 128
H. Altenbach, Andreas Öchsner (2020)
Green Nanomaterials: Processing, Properties, and ApplicationsGreen Nanomaterials
A. Nair, D. Warner, R. Hennig, W. Curtin (2010)
Coupling quantum and continuum scales to predict crack tip dislocation nucleationScripta Materialia, 63
J. Kermode, A. Gleizer, Guy Kovel, L. Pastewka, Gábor Csányi, D. Sherman, A. Vita (2015)
Low Speed Crack Propagation via Kink Formation and Advance on the Silicon (110) Cleavage Plane.Physical review letters, 115 13
T. Sumigawa, H. Fang, E. Kawai, T. Kitamura (2014)
Mechanics of fracture in nanometer-scale components, 1
Dominic Holland, M. Marder (1998)
Ideal Brittle Fracture of Silicon Studied with Molecular DynamicsPhysical Review Letters, 80
T. Sumigawa, Shinsaku Ashida, Shūhei Tanaka, Kazunori Sanada, T. Kitamura (2015)
Fracture toughness of silicon in nanometer-scale singular stress fieldEngineering Fracture Mechanics, 150
N. Pugno, A. Carpinteri, M. Ippolito, A. Mattoni, L. Colombo (2008)
Atomistic fracture: QFM vs. MD ☆Engineering Fracture Mechanics, 75
E. Bitzek, P. Koskinen, F. Gähler, M. Moseler, P. Gumbsch (2006)
Structural relaxation made simple.Physical review letters, 97 17
P. Gallo, T. Sumigawa, T. Shimada, Y. Yan, T. Kitamura (2019)
Proceedings of the First International Conference on Theoretical, Applied and Experimental Mechanics
Wenlei Zhang, Jian Hu, Jingda Tang, Zhongtong Wang, Jikun Wang, Tongqing Lu, Z. Suo (2018)
Fracture Toughness and Fatigue Threshold of Tough Hydrogels.ACS macro letters, 8 1
T. Sumigawa, T. Shimada, S. Tanaka, H. Unno, Naoki Ozaki, Shinsaku Ashida, T. Kitamura (2017)
Griffith Criterion for Nanoscale Stress Singularity in Brittle Silicon.ACS nano, 11 6
Shao-Huan Cheng, C. Sun (2014)
Convergence of local atomistic stress based on periodic latticeInternational Journal of Solids and Structures, 51
Shao-Huan Cheng, C. Sun (2014)
Size-Dependent Fracture Toughness of Nanoscale Structures: Crack-Tip Stress Approach in Molecular DynamicsJournal of Nanomechanics and Micromechanics, 4
J. Zimmerman, E WebbIII, J Hoyt, R. Jones, P Klein, D. Bammann (2004)
Calculation of stress in atomistic simulationModelling and Simulation in Materials Science and Engineering, 12
P. Gallo, Yabin Yan, T. Sumigawa, T. Kitamura (2018)
Fracture Behavior of Nanoscale Notched Silicon Beams Investigated by the Theory of Critical DistancesAdvanced Theory and Simulations, 1
P. Gallo, Y. Hagiwara, T. Shimada, T. Kitamura (2019)
Strain energy density approach for brittle fracture from nano to macroscale and breakdown of continuum theoryTheoretical and Applied Fracture Mechanics
T. Shimada, K. Ouchi, Yuu Chihara, T. Kitamura (2015)
Breakdown of Continuum Fracture Mechanics at the NanoscaleScientific Reports, 5
R. Thomson, C. Hsieh, V. Rana (1971)
Lattice Trapping of Fracture CracksJournal of Applied Physics, 42
A. Sherry, M. Goldthorpe (1995)
COMPENDIUM OF T‐STRESS SOLUTIONS FOR TWO AND THREE DIMENSIONAL CRACKED GEOMETRIESFatigue & Fracture of Engineering Materials & Structures, 18
S. Plimpton (1993)
Fast parallel algorithms for short-range molecular dynamicsJournal of Computational Physics, 117
N. Admal, E. Tadmor (2010)
A Unified Interpretation of Stress in Molecular SystemsJournal of Elasticity, 100
P. Gallo, T. Sumigawa, T. Shimada, Yabin Yan, T. Kitamura (2018)
Investigation into the Breakdown of Continuum Fracture Mechanics at the Nanoscale: Synthesis of Recent Results on Silicon
Arun Subramaniyan, C. Sun (2008)
Continuum interpretation of virial stress in molecular simulationsInternational Journal of Solids and Structures, 45
Dominic Holland, M. Marder (1999)
Cracks and AtomsAdvanced Materials, 11
C. Lamuta, A. Cupolillo, A. Politano, Z. Aliev, M. Babanly, E. Chulkov, L. Pagnotta (2016)
Indentation fracture toughness of single-crystal Bi2Te3 topological insulatorsNano Research, 9
A. Stukowski (2009)
Modelling and Simulation in Materials Science and Engineering Visualization and analysis of atomistic simulation data with OVITO – the Open Visualization Tool
K. Wang, B. Wang, T. Kitamura (2016)
A review on the application of modified continuum models in modeling and simulation of nanostructuresActa Mechanica Sinica, 32
Gi Lee, Y. Chung, Sang Na, H. Beom (2018)
Atomistic investigation of the T-stress effect on fracture toughness of copper and aluminum single crystalsJournal of Mechanical Science and Technology, 32
T. Sumigawa, Kim Byungwoon, Y. Mizuno, Takuma Morimura, T. Kitamura (2018)
In situ observation on formation process of nanoscale cracking during tension-compression fatigue of single crystal copper micron-scale specimenActa Materialia
F. Stillinger, T. Weber (1985)
Computer simulation of local order in condensed phases of silicon.Physical review. B, Condensed matter, 31 8
D. Akinwande, Nicholas Petrone, J. Hone (2014)
Two-dimensional flexible nanoelectronicsNature Communications, 5
Shaowen Xu, X. Deng (2008)
Nanoscale void nucleation and growth and crack tip stress evolution ahead of a growing crack in a single crystalNanotechnology, 19
P. Gallo, T. Sumigawa, T. Kitamura (2018)
Experimental characterization at nanoscale of single crystal silicon fracture toughnessFrattura ed Integrità Strutturale
Min Zhou (2003)
A new look at the atomic level virial stress: on continuum-molecular system equivalenceProceedings of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences, 459
E. Tadmor, R. Phillips, M. Ortiz (1996)
Mixed Atomistic and Continuum Models of Deformation in SolidsLangmuir, 12
J. Wortman, R. Evans (1965)
Young's Modulus, Shear Modulus, and Poisson's Ratio in Silicon and GermaniumJournal of Applied Physics, 36
J. Kermode, T. Albaret, D. Sherman, N. Bernstein, P. Gumbsch, M. Payne, Gábor Csányi, A. Vita (2008)
Low-speed fracture instabilities in a brittle crystalNature, 455
Gaurav Singh, J. Kermode, A. Vita, R. Zimmerman (2014)
Validity of linear elasticity in the crack-tip region of ideal brittle solidsInternational Journal of Fracture, 189
A. Needleman, E. Giessen (2001)
Micromechanics of Fracture: Connecting Physics to EngineeringMRS Bulletin, 26
B. Shiari, Ronald Miller (2016)
Multiscale modeling of crack initiation and propagation at the nanoscaleJournal of The Mechanics and Physics of Solids, 88
Continuum‐based fracture mechanics breaks down at the nanoscale where the discrete nature of atoms cannot be neglected. Intriguingly, this work shows that the concept of stress intensity factor is still valid if the atoms are modeled. Molecular statistics simulations are conducted on single‐edge cracked samples of ideal brittle silicon, varying the size until few nanometers. The local virial stress, derived as the functional derivative of the free energy of a molecular system with respect to the deformation tensor, is used as a measure of the mechanical stress at the atomic level. Then, stress intensity factor at failure is evaluated. The results show that regardless of the size, the atomistic stress field varies according to the classical 1/r0.5 relation, and discrete stress intensity factors can be derived for all the geometries. Continuum values, in contrast, fail to describe the fracture when the length of the singular stress field is smaller than 4–5 times the fracture process zone. Thus, this work shows that the stress intensity factor from atomic stress may be useful to describe the fracture criterion at extremely small dimensions, provided that virial stress is accepted as a representation of mechanical stress at the atomic level.
Advanced Theory and Simulations – Wiley
Published: Oct 1, 2019
Keywords: ; ; ; ; ; ;
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.