Login / Signup

Multiscale analysis of Benjamin Franklin's innovations in American paper money.

Khachatur V ManukyanArmenuhi YeghishyanAni AprahamianLouis JordanMichael KurkowskiMark RaddellLaura Richter LeZachary D SchultzLiam SpillaneMichael Wiescher
Published in: Proceedings of the National Academy of Sciences of the United States of America (2023)
Benjamin Franklin was a preeminent proponent of the new colonial and Continental paper monetary system in 18th-century America. He established a network of printers, designing and printing money notes at the same time. Franklin recognized the necessity of paper money in breaking American dependence on the British trading system, and he helped print Continental money to finance the American War of Independence. We use a unique combination of nondistractive, microdestructive, and advanced atomic-level imaging methods, including Raman, Infrared, electron energy loss spectroscopy, X-ray diffraction, X-ray fluorescence, and aberration-corrected scanning transmission electron microscopy, to analyze pre-Federal American paper money from the Rare Books and Special Collections of the Hesburgh Library at the University of Notre Dame. We investigate and compare the chemical compositions of the paper fibers, the inks, and fillers made of special crystals in the bills printed by Franklin's printing network, other colonial printers, and counterfeit money. Our results reveal previously unknown ways that Franklin developed to safeguard printed money notes against counterfeiting. Franklin used natural graphite pigments to print money and developed durable "money paper" with colored fibers and translucent muscovite fillers, along with his own unique designs of "nature-printed" patterns and paper watermarks. These features and inventions made pre-Federal American paper currency an archetype for developing paper money for centuries to come. Our multiscale analysis also provides essential information for the preservation of historical paper money.
Keyphrases
  • electron microscopy
  • high resolution
  • magnetic resonance imaging
  • single molecule
  • healthcare
  • computed tomography
  • gene expression
  • room temperature
  • single cell
  • quantum dots
  • dual energy