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Organisationseinheit der BAM
Unilateral and solid-state nuclear magnetic resonance
(NMR) analyses were performed on a parchment
fragment of the Dead Sea Scroll (DSS). The analyzed
sample belongs to the collection of non-inscribed and
nontreated fragments of known archaeological provenance
from the John Rylands University Library in Manchester.
Therefore, it can be considered as original DSS material
free from any contamination related to the post-discovery
period. Considering the paramount significance of the DSS,
noninvasive approaches and portable in situ nondestructive
methods are of fundamental importance for the determination
of composition, structure, and chemicalphysical
properties of the materials under study. NMR studies
reveal low amounts of water content associated with
very short proton relaxation times, T1, indicating a high
level of deterioration of collagen molecules within scroll
fragments. In addition, 13C cross-polarization magicangle-
spinning (CPMAS) NMR spectroscopy shows characteristic
peaks of lipids whose presence we attribute to
the production technology that did not involve liming.
Extraction with chloroform led to the reduction of both
lipid and protein signals in the 13C CPMAS spectrum
indicating probable involvement of lipids in parchment
degradation processes. NMR absorption and relaxation
measurements provide nondestructive, discriminative, and
sensitive tools for studying the deterioration effects on the
organization and properties of water and collagen within
ancient manuscripts.
In this study we demonstrate the possibility to identify the production area of the scrolls, coupling non-destructive quantitative analysis of race elements to spectroscopic investigation of the inks. This approach, that allowed us to determine the Dead Sea area as origin of 1QHodayot, is of general validity.
Quantifying degradation of collagen in ancient manuscripts: the case of the Dead Sea Temple Scroll
(2013)
Since their discovery in the late 1940s, the Dead Sea Scrolls, some 900 ancient Jewish texts, have never stopped attracting the attention of scholars and the broad public alike, because they were created towards the end of the Second Temple period and the 'time of Christ'. Most of the work on them has been dedicated to the information contained in the scrolls' text, leaving physical aspects of the writing materials unexamined. They are, however, crucial for both historical insight and preservation of the scrolls. Although scientific analysis requires handling, it is essential to establish the state of degradation of these valued documents. Polarized Raman Spectroscopy (PRS) is a powerful tool for obtaining information on both the composition and the level of disorder of molecular units. In this study, we developed a non-invasive and non-destructive methodology that allows a quantification of the disorder (that can be related to the degradation) of protein molecular units in collagen fibers. Not restricted to collagen, this method can be applied also to other protein-based fibrous materials such as ancient silk, wool or hair. We used PRS to quantify the degradation of the collagen fibers in a number of fragments of the Temple Scroll (11Q19a). We found that collagen fibers degrade heterogeneously, with the ones on the surface more degraded than those in the core.
The miraculously preserved 2000-year-old Dead Sea Scrolls, ancient texts of invaluable historical significance, were discovered in the mid-20th century in the caves of the Judean desert. The texts were mainly written on parchment and exhibit vast diversity in their states of preservation. One particular scroll, the 8-m-long Temple Scroll is especially notable because of its exceptional thinness and bright ivory color. The parchment has a layered structure, consisting of a collagenous base material and an atypical inorganic overlayer. We analyzed the chemistry of the inorganic layer using x-ray and Raman spectroscopies and discovered a variety of evaporitic sulfate salts. This points toward a unique ancient production technology in which the parchment was modified through the addition of the inorganic layer as a writing surface. Furthermore, understanding the properties of these minerals is particularly critical for the development of suitable conservation methods for the preservation of these invaluable historical documents.