<xml>
  <records>
    <record>
       <contributors>
          <authors>
             <author>Oseroff, T.E.</author>
             <author>Ge, M.</author>
             <author>Liepe, M.</author>
             <author>Maniscalco, J.T.</author>
             <author>McNeal, S.R.</author>
             <author>Porter, R.D.</author>
             <author>Sowa, M.J.</author>
          </authors>
       </contributors>
       <titles>
          <title>
             Performance of Samples With Novel SRF Materials and Growth Techniques
          </title>
       </titles>
		 <publisher>JACoW Publishing</publisher>
       <pub-location>Geneva, Switzerland</pub-location>
		 <isbn>978-3-95450-184-7</isbn>
		 <electronic-resource-num>10.18429/JACoW-IPAC2018-WEPMF047</electronic-resource-num>
		 <language>English</language>
		 <pages>2475-2478</pages>
       <pages>WEPMF047</pages>
       <keywords>
       </keywords>
       <work-type>Contribution to a conference proceedings</work-type>
       <dates>
          <year>2018</year>
          <pub-dates>
             <date>2018-06</date>
          </pub-dates>
       </dates>
       <urls>
          <related-urls>
              <url>https://doi.org/10.18429/JACoW-IPAC2018-WEPMF047</url>
              <url>http://jacow.org/ipac2018/papers/wepmf047.pdf</url>
          </related-urls>
       </urls>
       <abstract>
          Novel materials are currently being studied in an attempt to push accelerating superconducting RF cavities to support higher accelerating fields and to operate with lower power loss. Growing layers of these materials of the quality necessary has proven to be difficult. In this work, we present the SRF performance of planar samples of the promising materials, NbN and Nb¬3Sn, grown using atomic layer deposition (ALD) and chemical vapor deposition (CVD) respectively. Results are promising.
       </abstract>
    </record>
  </records>
</xml>
