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Oxygen Isotope Bias Arising from the Drying Process of Nanocellulose: Implications for Studies Using Subfossil Wood
Junbo Ren1, Shaoyi Lyu2, Chenxi Xu1,3
1State Key Laboratory of Lithospheric and Environmental Coevolution, Institute of Geology and Geophysics, Chinese Academy of Sciences, Beijing 100029, China.
Abstract:
The oxygen isotopes (δ18O) from tree rings in living and subfossil wood provide valuable climate records across different periods, yet their climatic interpretation fundamentally depends on the accuracy of the isotopic measurements. While homogenization procedures are commonly employed in laboratories to ensure measurement precision, subfossil wood samples present unique challenges due to diagenetic effects─specifically, the shortening of cellulose chains. These shortened cellulose chains can reach nanoscale dimensions. For such nanocellulose, hornification induced by hydrogen bonds during drying processes may result in incomplete water removal and subsequent δ18O heterogeneity. Through comparative analysis of oven-dried and freeze-dried samples, we reveal that freeze-drying minimizes hornification, prevents interfiber hydrogen bond formation, and maintains isotopic homogeneity. These findings not only enhance the accuracy of future cellulose δ18O analyses but also reinforce the reliability of subfossil cellulose δ18O as a robust proxy for paleoclimate reconstruction. Our study establishes a critical methodological framework for improving isotopic fidelity in cellulose-based climate archives.
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