# Bibliography

Ryan James York · https://ryanjamesyork.com/bibliography

> References cited in the chapters and findings, by citation key.

References are cited in the text by key, in square brackets. Keys are formed from the authors' initials and the year, or from the document number for standards.

## Hardware security

<p id="A20"><b>[A20]</b> R. Anderson, <i>Security Engineering: A Guide to Building Dependable Distributed Systems</i>, 3rd ed. (Wiley, Indianapolis, 2020).</p>

## Cryptography and provenance

<p id="BDLSY12"><b>[BDLSY12]</b> D. J. Bernstein, N. Duif, T. Lange, P. Schwabe, and B.-Y. Yang, “High-speed high-security signatures,” <i>J. Cryptographic Engineering</i> <b>2</b>, 77–89 (2012).</p>

<p id="HS91"><b>[HS91]</b> S. Haber and W. S. Stornetta, “How to time-stamp a digital document,” <i>J. Cryptology</i> <b>3</b>, 99–111 (1991).</p>

<p id="M87"><b>[M87]</b> R. C. Merkle, “A digital signature based on a conventional encryption function,” in <i>Advances in Cryptology — CRYPTO ’87</i>, Lecture Notes in Computer Science <b>293</b> (Springer, Berlin, 1988), pp. 369–378.</p>

<p id="RFC6234"><b>[RFC6234]</b> D. Eastlake 3rd and T. Hansen, “US Secure Hash Algorithms (SHA and SHA-based HMAC and HKDF),” RFC 6234 (IETF, 2011).</p>

<p id="RFC8032"><b>[RFC8032]</b> S. Josefsson and I. Liusvaara, “Edwards-Curve Digital Signature Algorithm (EdDSA),” RFC 8032 (IETF, 2017).</p>

## Carbon materials and Raman spectroscopy

<p id="CFR05"><b>[CFR05]</b> C. Casiraghi, A. C. Ferrari, and J. Robertson, “Raman spectroscopy of hydrogenated amorphous carbons,” <i>Phys. Rev. B</i> <b>72</b>, 085401 (2005).</p>

<p id="CGPNG09"><b>[CGPNG09]</b> A. H. Castro Neto, F. Guinea, N. M. R. Peres, K. S. Novoselov, and A. K. Geim, “The electronic properties of graphene,” <i>Rev. Mod. Phys.</i> <b>81</b>, 109–162 (2009).</p>

<p id="FCS06"><b>[FCS06]</b> A. C. Ferrari, J. C. Meyer, V. Scardaci, C. Casiraghi, M. Lazzeri, F. Mauri, S. Piscanec, D. Jiang, K. S. Novoselov, S. Roth, and A. K. Geim, “Raman spectrum of graphene and graphene layers,” <i>Phys. Rev. Lett.</i> <b>97</b>, 187401 (2006).</p>

<p id="FR00"><b>[FR00]</b> A. C. Ferrari and J. Robertson, “Interpretation of Raman spectra of disordered and amorphous carbon,” <i>Phys. Rev. B</i> <b>61</b>, 14095–14107 (2000).</p>

<p id="FR01"><b>[FR01]</b> A. C. Ferrari and J. Robertson, “Resonant Raman spectroscopy of disordered, amorphous, and diamondlike carbon,” <i>Phys. Rev. B</i> <b>64</b>, 075414 (2001).</p>

<p id="KW89"><b>[KW89]</b> D. S. Knight and W. B. White, “Characterization of diamond films by Raman spectroscopy,” <i>J. Mater. Res.</i> <b>4</b>, 385–393 (1989).</p>

<p id="MPDD09"><b>[MPDD09]</b> L. M. Malard, M. A. Pimenta, G. Dresselhaus, and M. S. Dresselhaus, “Raman spectroscopy in graphene,” <i>Phys. Rep.</i> <b>473</b>, 51–87 (2009).</p>

<p id="TK70"><b>[TK70]</b> F. Tuinstra and J. L. Koenig, “Raman spectrum of graphite,” <i>J. Chem. Phys.</i> <b>53</b>, 1126–1130 (1970).</p>

<p id="W47"><b>[W47]</b> P. R. Wallace, “The band theory of graphite,” <i>Phys. Rev.</i> <b>71</b>, 622–634 (1947).</p>
