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        <dc:title>Cryogenic electro-optic modulation in titanium in-diffused lithium niobate waveguides</dc:title>
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        <bibo:abstract>&lt;jats:title&gt;Abstract&lt;/jats:title&gt;
               &lt;jats:p&gt;Lithium niobate is a promising platform for integrated quantum optics. In this platform, we aim to efficiently manipulate and detect quantum states by combining superconducting single photon detectors and modulators. The cryogenic operation of a superconducting single photon detector dictates the optimisation of the electro-optic modulators under the same operating conditions. To that end, we characterise a phase modulator, directional coupler, and polarisation converter at both ambient and cryogenic temperatures. The operation voltage &lt;jats:inline-formula&gt;
                     &lt;jats:tex-math&gt;&lt;?CDATA $V_{\pi/2}$?&gt;&lt;/jats:tex-math&gt;
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                                 &lt;mml:mo&gt;/&lt;/mml:mo&gt;
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                              &lt;mml:mn&gt;2&lt;/mml:mn&gt;
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                     &lt;jats:inline-graphic xmlns:xlink=&quot;http://www.w3.org/1999/xlink&quot; xlink:href=&quot;jpphotonac6c63ieqn1.gif&quot; xlink:type=&quot;simple&quot; /&gt;
                  &lt;/jats:inline-formula&gt; of these modulators increases, due to the decrease in the electro-optic effect, by 74% for the phase modulator, 84% for the directional coupler and 35% for the polarisation converter below 8.5&lt;jats:inline-formula&gt;
                     &lt;jats:tex-math&gt;&lt;?CDATA $\,\mathrm{K}$?&gt;&lt;/jats:tex-math&gt;
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                           &lt;mml:mi mathvariant=&quot;normal&quot;&gt;K&lt;/mml:mi&gt;
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                  &lt;/jats:inline-formula&gt;. The phase modulator preserves its broadband nature and modulates light in the characterised wavelength range. The unbiased bar state of the directional coupler changed by a wavelength shift of 85&lt;jats:inline-formula&gt;
                     &lt;jats:tex-math&gt;&lt;?CDATA $\,\mathrm{nm}$?&gt;&lt;/jats:tex-math&gt;
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                  &lt;/jats:inline-formula&gt; while cooling the device down to 5&lt;jats:inline-formula&gt;
                     &lt;jats:tex-math&gt;&lt;?CDATA $\,\mathrm{K}$?&gt;&lt;/jats:tex-math&gt;
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                           &lt;mml:mi mathvariant=&quot;normal&quot;&gt;K&lt;/mml:mi&gt;
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                  &lt;/jats:inline-formula&gt;. The polarisation converter uses periodic poling to phasematch the two orthogonal polarisations. The phasematched wavelength of the utilised poling changes by 112&lt;jats:inline-formula&gt;
                     &lt;jats:tex-math&gt;&lt;?CDATA $\,\mathrm{nm}$?&gt;&lt;/jats:tex-math&gt;
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                  &lt;/jats:inline-formula&gt; when cooling to 5&lt;jats:inline-formula&gt;
                     &lt;jats:tex-math&gt;&lt;?CDATA $\,\mathrm{K}$?&gt;&lt;/jats:tex-math&gt;
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                  &lt;/jats:inline-formula&gt;.&lt;/jats:p&gt;</bibo:abstract>
        <bibo:volume>4</bibo:volume>
        <bibo:issue>3</bibo:issue>
        <dc:publisher>IOP Publishing</dc:publisher>
        <bibo:doi rdf:resource="10.1088/2515-7647/ac6c63" />
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