{"id":{"repo_id":"unr","oai_identifier":"oai:scholarwolf.unr.edu:11714/8553"},"canonical_url":"https://search.dev.ndltd.org/etd/unr/oai:scholarwolf.unr.edu:11714/8553","repository":{"repo_id":"unr","name":"University of Nevada - Reno","base_url":"https://scholarwolf.unr.edu/server/oai/request"},"display":{"title":"Theoretical studies at the interface of atomic physics and precision measurements","abstract":"Hyperfine structure (HFS) of atomic energy levels arises due to interactions of atomic electrons with a hierarchy of nuclear multipole moments, including magnetic dipole, electric quadrupole, and higher-rank moments. Recently, a determination of the magnetic octupole moment of the $^{173}\\mathrm{Yb}$ nucleus was reported from HFS measurements in neutral ${}^{173}\\mathrm{Yb}$ [PRA 87, 012512 (2013)], and is four orders of magnitude larger than the nuclear theory prediction. Considering this substantial discrepancy between the spectroscopically extracted value and nuclear theory, here we propose to use an alternative system to resolve this tension, a singly charged ion of the same $^{173}\\mathrm{Yb}$ isotope. Utilizing the substantial suite of tools developed around $\\mathrm{Yb}^+$ for quantum information applications, we propose to extract nuclear octupole and hexadecapole moments from measuring hyperfine splittings in the extremely long-lived first excited state ($4f^{13}(^2\\!F^{o})6s^2$, $J=7/2$) of $^{173}\\mathrm{Yb}^+$. We present the results of atomic structure calculations in support of the proposed measurements. The next study investigates the hyperfine-induced effects in a series of experiments related to atomic parity violation (APV). The Stark interference technique, used in APV experiments, requires accurate knowledge of transition polarizability. In Cesium, the $6S_{1/2}\\rightarrow{7S_{1/2}}$ APV amplitude, $\\mathrm{Im(E_{PNC})}$ is deduced from the measured ratio $\\mathrm{Im(E_{PNC})}/\\beta$ of the APV amplitude to the vector transition polarizability, $\\beta$. %Ideally, the uncertainties in $\\beta$ and the above ratio have to be comparable. The ratio was measured with a $0.35\\%$ accuracy by the Boulder group [Science {\\bf 275}, 1759 (1997)]. Currently, there is tension in different determinations of $\\beta$. The most recent value [Phys.\\ Rev.\\ Lett.\\ {\\bf 123}, 073002 (2019)] of $\\beta$, $27.139\\,(42)$ $a_0^{3}$ was deduced from the semi-empirical determination of the scalar transition polarizability $\\alpha$ and the measured ratio between the scalar and vector polarizability $\\alpha/\\beta$ . %To address an issue that the reported value is comparable in $\\sim\\,$ $0.2\\%$ This value, however, differs by $\\sim 0.7\\%$ from a previous determination of $\\beta$ [Phys.\\ Rev. \\ A. \\ {\\bf{62}}, 052101 (2000)] based on the measured ratio of magnetic-dipole $6S_{1/2}\\rightarrow{7S_{1/2}}$ matrix element to $\\beta$. Here, we recompute the E1-dipole matrix elements associated with $\\alpha^{[2]}$ using the state-of-art coupled-cluster technique and $\\alpha^{[2]}$ evaluates to $-262.26\\,(48)\\,a_0^3$. The resulting determination for $\\beta$ is $27.083\\,(57)\\,a_0^3$ based on the reported ratio $\\alpha/\\beta$ of $9.905(11)$ [Phys.\\ Rev. \\ A. {\\bf{55}}, 2 (1997)]. We also quantitatively evaluate the effect of additional third-order hyperfine-induced corrections to the $6S_{1/2}\\rightarrow{7S_{1/2}}$ transition polarizability. We show that a new ''tensor'' contribution to transition polarizability appears in the analysis and investigate nuclear spin-dependent-polarizability effects on the nuclear anapole moment and the ratio between the scalar and vector polarizabilities.","abstract_html":"Hyperfine structure (HFS) of atomic energy levels arises due to interactions of atomic electrons with a hierarchy of nuclear multipole moments, including magnetic dipole, electric quadrupole, and higher-rank moments. Recently, a determination of the magnetic octupole moment of the <span class=\"etd-inline-math\"><sup>173</sup><span class=\"etd-inline-math-roman\">Yb</span></span> nucleus was reported from HFS measurements in neutral <span class=\"etd-inline-math\">{}<sup>173</sup><span class=\"etd-inline-math-roman\">Yb</span></span> [PRA 87, 012512 (2013)], and is four orders of magnitude larger than the nuclear theory prediction. Considering this substantial discrepancy between the spectroscopically extracted value and nuclear theory, here we propose to use an alternative system to resolve this tension, a singly charged ion of the same <span class=\"etd-inline-math\"><sup>173</sup><span class=\"etd-inline-math-roman\">Yb</span></span> isotope. Utilizing the substantial suite of tools developed around <span class=\"etd-inline-math\"><span class=\"etd-inline-math-roman\">Yb</span><sup>+</sup></span> for quantum information applications, we propose to extract nuclear octupole and hexadecapole moments from measuring hyperfine splittings in the extremely long-lived first excited state (<span class=\"etd-inline-math\">4f<sup>13</sup>(<sup>2</sup>\\!F<sup>o</sup>)6s<sup>2</sup></span>, $J=7/2$) of <span class=\"etd-inline-math\"><sup>173</sup><span class=\"etd-inline-math-roman\">Yb</span><sup>+</sup></span>. We present the results of atomic structure calculations in support of the proposed measurements. The next study investigates the hyperfine-induced effects in a series of experiments related to atomic parity violation (APV). The Stark interference technique, used in APV experiments, requires accurate knowledge of transition polarizability. In Cesium, the <span class=\"etd-inline-math\">6S<sub>1/2</sub>\\rightarrow{7S<sub>1/2</sub>}</span> APV amplitude, <span class=\"etd-inline-math\"><span class=\"etd-inline-math-roman\">Im(E<sub>PNC</sub>)</span></span> is deduced from the measured ratio <span class=\"etd-inline-math\"><span class=\"etd-inline-math-roman\">Im(E<sub>PNC</sub>)</span>/&beta;</span> of the APV amplitude to the vector transition polarizability, <span class=\"etd-inline-math\">&beta;</span>. %Ideally, the uncertainties in <span class=\"etd-inline-math\">&beta;</span> and the above ratio have to be comparable. The ratio was measured with a $0.35\\%$ accuracy by the Boulder group [Science {\\bf 275}, 1759 (1997)]. Currently, there is tension in different determinations of <span class=\"etd-inline-math\">&beta;</span>. The most recent value [Phys.\\ Rev.\\ Lett.\\ {\\bf 123}, 073002 (2019)] of <span class=\"etd-inline-math\">&beta;</span>, <span class=\"etd-inline-math\">27.139 (42)</span> <span class=\"etd-inline-math\">a<sub>0</sub><sup>3</sup></span> was deduced from the semi-empirical determination of the scalar transition polarizability <span class=\"etd-inline-math\">&alpha;</span> and the measured ratio between the scalar and vector polarizability <span class=\"etd-inline-math\">&alpha;/&beta;</span> . %To address an issue that the reported value is comparable in <span class=\"etd-inline-math\">\\sim </span> $0.2\\%$ This value, however, differs by $\\sim 0.7\\%$ from a previous determination of <span class=\"etd-inline-math\">&beta;</span> [Phys.\\ Rev. \\ A. \\ {\\bf{62}}, 052101 (2000)] based on the measured ratio of magnetic-dipole <span class=\"etd-inline-math\">6S<sub>1/2</sub>\\rightarrow{7S<sub>1/2</sub>}</span> matrix element to <span class=\"etd-inline-math\">&beta;</span>. Here, we recompute the E1-dipole matrix elements associated with <span class=\"etd-inline-math\">&alpha;<sup>[2]</sup></span> using the state-of-art coupled-cluster technique and <span class=\"etd-inline-math\">&alpha;<sup>[2]</sup></span> evaluates to <span class=\"etd-inline-math\">-262.26 (48) a<sub>0</sub><sup>3</sup></span>. The resulting determination for <span class=\"etd-inline-math\">&beta;</span> is <span class=\"etd-inline-math\">27.083 (57) a<sub>0</sub><sup>3</sup></span> based on the reported ratio <span class=\"etd-inline-math\">&alpha;/&beta;</span> of $9.905(11)$ [Phys.\\ Rev. \\ A. {\\bf{55}}, 2 (1997)]. We also quantitatively evaluate the effect of additional third-order hyperfine-induced corrections to the <span class=\"etd-inline-math\">6S<sub>1/2</sub>\\rightarrow{7S<sub>1/2</sub>}</span> transition polarizability. We show that a new &#x27;&#x27;tensor&#x27;&#x27; contribution to transition polarizability appears in the analysis and investigate nuclear spin-dependent-polarizability effects on the nuclear anapole moment and the ratio between the scalar and vector polarizabilities.","abstract_has_math":true,"creators":["Xiao, Di"],"institution":null,"degree_name":null,"degree_level":"Doctorate Degree","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Derevianko, Andrei"],"committee_chairs":[],"committee_members":["Weinstein, Jonathan","Tscherbul, Timur","Williams, Joshua","Varganov, Sergey"],"year":2023,"date_issued":"2023","date_published":"2023","updated_at":"2026-07-27T21:47:03Z","subjects":[],"languages":[],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"http://hdl.handle.net/11714/8553","outbound_label":"Handle","outbound_source":"dc:identifier.uri"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Derevianko, Andrei"]},{"key":"dc:contributor.committeemember","label":"Committee Member","values":["Weinstein, Jonathan","Tscherbul, Timur","Williams, Joshua","Varganov, Sergey"]},{"key":"dc:creator","label":"Author","values":["Xiao, Di"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.accessioned","label":"Dc Date Accessioned","values":["2023-06-27T01:14:28Z"]},{"key":"dc:date.available","label":"Dc Date Available","values":["2023-06-27T01:14:28Z"]},{"key":"dc:date.issued","label":"Date","values":["2023"]},{"key":"dc:type","label":"Dc Type","values":["Dissertation"]},{"key":"thesis:degree_level","label":"Degree Level","values":["Doctorate Degree"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["http://hdl.handle.net/11714/8553"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Hyperfine structure (HFS) of atomic energy levels arises due to interactions of atomic electrons with a hierarchy of nuclear multipole moments, including magnetic dipole, electric quadrupole, and higher-rank moments. Recently, a determination of the magnetic octupole moment of the $^{173}\\mathrm{Yb}$ nucleus was reported from HFS measurements in neutral ${}^{173}\\mathrm{Yb}$ [PRA 87, 012512 (2013)], and is four orders of magnitude larger than the nuclear theory prediction. Considering this substantial discrepancy between the spectroscopically extracted value and nuclear theory, here we propose to use an alternative system to resolve this tension, a singly charged ion of the same $^{173}\\mathrm{Yb}$ isotope. Utilizing the substantial suite of tools developed around $\\mathrm{Yb}^+$ for quantum information applications, we propose to extract nuclear octupole and hexadecapole moments from measuring hyperfine splittings in the extremely long-lived first excited state ($4f^{13}(^2\\!F^{o})6s^2$, $J=7/2$) of $^{173}\\mathrm{Yb}^+$. We present the results of atomic structure calculations in support of the proposed measurements. The next study investigates the hyperfine-induced effects in a series of experiments related to atomic parity violation (APV). The Stark interference technique, used in APV experiments, requires accurate knowledge of transition polarizability. In Cesium, the $6S_{1/2}\\rightarrow{7S_{1/2}}$ APV amplitude, $\\mathrm{Im(E_{PNC})}$ is deduced from the measured ratio $\\mathrm{Im(E_{PNC})}/\\beta$ of the APV amplitude to the vector transition polarizability, $\\beta$. %Ideally, the uncertainties in $\\beta$ and the above ratio have to be comparable. The ratio was measured with a $0.35\\%$ accuracy by the Boulder group [Science {\\bf 275}, 1759 (1997)]. Currently, there is tension in different determinations of $\\beta$. The most recent value [Phys.\\ Rev.\\ Lett.\\ {\\bf 123}, 073002 (2019)] of $\\beta$, $27.139\\,(42)$ $a_0^{3}$ was deduced from the semi-empirical determination of the scalar transition polarizability $\\alpha$ and the measured ratio between the scalar and vector polarizability $\\alpha/\\beta$ . %To address an issue that the reported value is comparable in $\\sim\\,$ $0.2\\%$ This value, however, differs by $\\sim 0.7\\%$ from a previous determination of $\\beta$ [Phys.\\ Rev. \\ A. \\ {\\bf{62}}, 052101 (2000)] based on the measured ratio of magnetic-dipole $6S_{1/2}\\rightarrow{7S_{1/2}}$ matrix element to $\\beta$. Here, we recompute the E1-dipole matrix elements associated with $\\alpha^{[2]}$ using the state-of-art coupled-cluster technique and $\\alpha^{[2]}$ evaluates to $-262.26\\,(48)\\,a_0^3$. The resulting determination for $\\beta$ is $27.083\\,(57)\\,a_0^3$ based on the reported ratio $\\alpha/\\beta$ of $9.905(11)$ [Phys.\\ Rev. \\ A. {\\bf{55}}, 2 (1997)]. We also quantitatively evaluate the effect of additional third-order hyperfine-induced corrections to the $6S_{1/2}\\rightarrow{7S_{1/2}}$ transition polarizability. We show that a new ''tensor'' contribution to transition polarizability appears in the analysis and investigate nuclear spin-dependent-polarizability effects on the nuclear anapole moment and the ratio between the scalar and vector polarizabilities."]},{"key":"dc:format","label":"Dc Format","values":["PDF"]},{"key":"dc:title","label":"Title","values":["Theoretical studies at the interface of atomic physics and precision measurements"]}]}],"canonical_facts":{"dc:contributor.advisor":["Derevianko, Andrei"],"dc:contributor.committeemember":["Weinstein, Jonathan","Tscherbul, Timur","Williams, Joshua","Varganov, Sergey"],"dc:creator":["Xiao, Di"],"dc:date.accessioned":["2023-06-27T01:14:28Z"],"dc:date.available":["2023-06-27T01:14:28Z"],"dc:date.issued":["2023"],"dc:description.abstract":["Hyperfine structure (HFS) of atomic energy levels arises due to interactions of atomic electrons with a hierarchy of nuclear multipole moments, including magnetic dipole, electric quadrupole, and higher-rank moments. Recently, a determination of the magnetic octupole moment of the $^{173}\\mathrm{Yb}$ nucleus was reported from HFS measurements in neutral ${}^{173}\\mathrm{Yb}$ [PRA 87, 012512 (2013)], and is four orders of magnitude larger than the nuclear theory prediction. Considering this substantial discrepancy between the spectroscopically extracted value and nuclear theory, here we propose to use an alternative system to resolve this tension, a singly charged ion of the same $^{173}\\mathrm{Yb}$ isotope. Utilizing the substantial suite of tools developed around $\\mathrm{Yb}^+$ for quantum information applications, we propose to extract nuclear octupole and hexadecapole moments from measuring hyperfine splittings in the extremely long-lived first excited state ($4f^{13}(^2\\!F^{o})6s^2$, $J=7/2$) of $^{173}\\mathrm{Yb}^+$. We present the results of atomic structure calculations in support of the proposed measurements. The next study investigates the hyperfine-induced effects in a series of experiments related to atomic parity violation (APV). The Stark interference technique, used in APV experiments, requires accurate knowledge of transition polarizability. In Cesium, the $6S_{1/2}\\rightarrow{7S_{1/2}}$ APV amplitude, $\\mathrm{Im(E_{PNC})}$ is deduced from the measured ratio $\\mathrm{Im(E_{PNC})}/\\beta$ of the APV amplitude to the vector transition polarizability, $\\beta$. %Ideally, the uncertainties in $\\beta$ and the above ratio have to be comparable. The ratio was measured with a $0.35\\%$ accuracy by the Boulder group [Science {\\bf 275}, 1759 (1997)]. Currently, there is tension in different determinations of $\\beta$. The most recent value [Phys.\\ Rev.\\ Lett.\\ {\\bf 123}, 073002 (2019)] of $\\beta$, $27.139\\,(42)$ $a_0^{3}$ was deduced from the semi-empirical determination of the scalar transition polarizability $\\alpha$ and the measured ratio between the scalar and vector polarizability $\\alpha/\\beta$ . %To address an issue that the reported value is comparable in $\\sim\\,$ $0.2\\%$ This value, however, differs by $\\sim 0.7\\%$ from a previous determination of $\\beta$ [Phys.\\ Rev. \\ A. \\ {\\bf{62}}, 052101 (2000)] based on the measured ratio of magnetic-dipole $6S_{1/2}\\rightarrow{7S_{1/2}}$ matrix element to $\\beta$. Here, we recompute the E1-dipole matrix elements associated with $\\alpha^{[2]}$ using the state-of-art coupled-cluster technique and $\\alpha^{[2]}$ evaluates to $-262.26\\,(48)\\,a_0^3$. The resulting determination for $\\beta$ is $27.083\\,(57)\\,a_0^3$ based on the reported ratio $\\alpha/\\beta$ of $9.905(11)$ [Phys.\\ Rev. \\ A. {\\bf{55}}, 2 (1997)]. We also quantitatively evaluate the effect of additional third-order hyperfine-induced corrections to the $6S_{1/2}\\rightarrow{7S_{1/2}}$ transition polarizability. We show that a new ''tensor'' contribution to transition polarizability appears in the analysis and investigate nuclear spin-dependent-polarizability effects on the nuclear anapole moment and the ratio between the scalar and vector polarizabilities."],"dc:format":["PDF"],"dc:identifier.uri":["http://hdl.handle.net/11714/8553"],"dc:title":["Theoretical studies at the interface of atomic physics and precision measurements"],"dc:type":["Dissertation"],"thesis:degree_level":["Doctorate Degree"]},"updated_at":"2026-07-27T21:47:03Z"}