<codeBook xmlns="ddi:codebook:2_5" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="ddi:codebook:2_5 https://ddialliance.org/Specification/DDI-Codebook/2.5/XMLSchema/codebook.xsd" version="2.5"><docDscr><citation><titlStmt><titl>One and Two Dimensional Quantum Lattice Algorithms for Maxwell Equations in Inhomogeneous Scalar Dielectric Media. II: Simulations</titl><IDNo agency="DOI">doi:10.7910/DVN/IPCDT0</IDNo></titlStmt><distStmt><distrbtr source="archive">Harvard Dataverse</distrbtr><distDate>2022-06-23</distDate></distStmt><verStmt source="archive"><version date="2022-06-24" type="RELEASED">2</version></verStmt><biblCit>George Vahala, Min Soe, Linda Vahala, Abhay K. Ram, 2022, "One and Two Dimensional Quantum Lattice Algorithms for Maxwell Equations in Inhomogeneous Scalar Dielectric Media. II: Simulations", https://doi.org/10.7910/DVN/IPCDT0, Harvard Dataverse, V2</biblCit></citation></docDscr><stdyDscr><citation><titlStmt><titl>One and Two Dimensional Quantum Lattice Algorithms for Maxwell Equations in Inhomogeneous Scalar Dielectric Media. II: Simulations</titl><IDNo agency="DOI">doi:10.7910/DVN/IPCDT0</IDNo></titlStmt><rspStmt><AuthEnty>George Vahala, Min Soe, Linda Vahala, Abhay K. Ram</AuthEnty></rspStmt><prodStmt/><distStmt><distrbtr source="archive">Harvard Dataverse</distrbtr></distStmt><holdings URI="https://doi.org/10.7910/DVN/IPCDT0"/></citation><stdyInfo><subject><keyword xml:lang="en">Physics</keyword><keyword>Electromagnetic wave propagation</keyword><keyword>electtromagneti wave scattering</keyword><keyword>Quantum Computing</keyword><keyword>Quantum Information Science</keyword><keyword>quantum lattice algorithm</keyword></subject><abstract>Long time quantum lattice algorithm (QLA) simulations are performed for the mul- tiple reflection-transmission of an initial electromagnetic pulse propagating normally to a boundary layer region joining two media of different refractive index. For these one dimensional (1D) sim- ulations, there is excellent agreement between x-, y- and z- representations, as well as very good agreement with nearly all the standard plane wave boundary condition results for reflection and transmission off a dielectric discontinuity. In the QLA simulation, no boundary conditions are im- posed at the continuous, but sharply increasing, dielectic boundary layers. Two dimensional (2D) QLA scattering simulations in the x-z plane are performed for an electromagnetic pulse interacting with a conical dielectric obstacle for the 8-16 qubit model.</abstract><sumDscr/><notes>&lt;a href="http://library.psfc.mit.edu/catalog/reports/2020/20ja/20ja105/abstract.php">PSFC REPORT PSFC/JA-20-105&lt;/a>&lt;br />&lt;br />AKR was supported by DoE Grant Number DE-FG02-91ER-54109 and DE-SC0018090.&lt;br />&lt;br />If this record does not contain the full text, then the manuscript has been embargoed by the publisher thus restricting open access for 12 to 24 months after publication.</notes></stdyInfo><method><dataColl><sources/></dataColl><anlyInfo/></method><dataAccs><setAvail/><useStmt/><notes type="DVN:TOU" level="dv">This dataset is made available without information on how it can be used. You should communicate with the Contact(s) specified before use.</notes></dataAccs><othrStdyMat/></stdyDscr><otherMat ID="f6353869" URI="https://dataverse.harvard.edu/api/access/datafile/6353869" level="datafile"><labl>20ja105_archival_manuscript.pdf</labl><txt></txt><notes level="file" type="DATAVERSE:CONTENTTYPE" subject="Content/MIME Type">application/pdf</notes></otherMat></codeBook>