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019 _a974474394
020 _a9781400873975
_q(electronic bk.)
020 _a1400873975
_q(electronic bk.)
020 _z9780691166803
020 _z0691166803
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037 _a9452713
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050 4 _aQC173.457.S7
_bS75 2015eb
072 7 _aSCI
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082 0 4 _a530.4/1
_223
049 _aMAIN
100 1 _aStillinger, F. H.,
_eauthor.
_964442
245 1 0 _aEnergy landscapes, inherent structures, and condensed-matter phenomena /
_cFrank H. Stillinger.
264 1 _aPrinceton, New Jersey :
_bPrinceton University Press,
_c[2015]
264 4 _c�2015
300 _a1 online resource
336 _atext
_btxt
_2rdacontent
337 _acomputer
_bc
_2rdamedia
338 _aonline resource
_bcr
_2rdacarrier
504 _aIncludes bibliographical references and index.
505 0 _aPotential energy functions -- Statistical mechanical basics -- Basins, saddles, and configuration-space mapping -- Crystal phases -- Liquids at thermal equilibrium -- Supercooled liquids and glasses -- Low-density matter -- The helium isotopes -- Water -- Polymeric substances -- Protein folding phenomena.
588 0 _aPrint version record.
520 _aThis book presents an authoritative and in-depth treatment of potential energy landscape theory, a powerful analytical approach to describing the atomic and molecular interactions in condensed-matter phenomena. Drawing on the latest developments in the computational modeling of many-body systems, Frank Stillinger applies this approach to a diverse range of substances and systems, including crystals, liquids, glasses and other amorphous solids, polymers, and solvent-suspended biomolecules. Stillinger focuses on the topography of the multidimensional potential energy hypersurface created when a large number of atoms or molecules simultaneously interact with one another. He explains how the complex landscape topography separates uniquely into individual "basins," each containing a local potential energy minimum or "inherent structure," and he shows how to identify interbasin transition states--saddle points--that reside in shared basin boundaries. Stillinger describes how inherent structures and their basins can be classified and enumerated by depth, curvatures, and other attributes, and how those enumerations lead logically from vastly complicated multidimensional landscapes to properties observed in the real three-dimensional world. Essential for practitioners and students across a variety of fields, the book illustrates how this approach applies equally to systems whose nuclear motions are intrinsically quantum mechanical or classical, and provides novel strategies for numerical simulation computations directed toward diverse condensed-matter systems
590 _aIEEE
_bIEEE Xplore Princeton University Press eBooks Library
650 0 _aCondensed matter.
_917064
650 0 _aNuclear physics.
_919166
650 2 _aNuclear Physics
_919166
650 6 _aMati�ere condens�ee.
_964443
650 6 _aPhysique nucl�eaire.
_963928
650 7 _anuclear physics.
_2aat
_919166
650 7 _aSCIENCE
_xEnergy.
_2bisacsh
_96159
650 7 _aSCIENCE
_xMechanics
_xGeneral.
_2bisacsh
_96096
650 7 _aSCIENCE
_xPhysics
_xGeneral.
_2bisacsh
_96160
650 7 _aSCIENCE
_xChemistry
_xGeneral.
_2bisacsh
_964444
650 7 _aCondensed matter.
_2fast
_0(OCoLC)fst00874443
_917064
650 7 _aNuclear physics.
_2fast
_0(OCoLC)fst01040386
_919166
655 4 _aElectronic books.
_93294
776 0 8 _iPrint version:
_aStillinger, F.H.
_tEnergy landscapes, inherent structures, and condensed-matter phenomena
_z9780691166803
_w(DLC) 2015004169
_w(OCoLC)907132570
856 4 0 _uhttps://ieeexplore.ieee.org/servlet/opac?bknumber=9452713
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