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Updated: Jan 20, 2026

Characterization of Electrode Materials for Lithium Ion and Sodium Ion Batteries Using Synchrotron Radiation Techniques
Published on: November 11, 2013
Economic and High Performance Phosphorus-Carbon Composite for Lithium and Sodium Storage
Jiaoyang Li1,2, Li Wang1,3, Zhengyang Wang1
1Institute of Nuclear & New Energy Technology and Department of Automotive Engineering, Tsinghua University, Beijing 100084, China.
Abstract:
Porous carbon derived from rice hulls has potential for application in phosphorus-carbon composites as high capacity anode materials for lithium-ion and sodium-ion batteries. The native composition of rice husks produces a porous carbon with a unique doped structure, as well as an efficient pore and channel structure, which may facilitate high and stable lithium storage. After cycling for over 100 cycles, the composite delivered a capacity of about 1293 mAh g-1, as well as a coulombic efficiency of nearly 99% at the current density of 130 mA g-1 with a capacity density of 1.43 mAh cm-2. High specific discharge capacities were maintained at different current densities (∼2224, ∼1895, ∼1642, and ∼1187 mAh g-1 composite at 130, 260, 520, and 1300 mA g-1, respectively). This study may offer a golden opportunity to change the humble fate of rice hulls, and also pave the way toward successful battery application for phosphorus-carbon composite anode materials.
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Soil Nutrient Analysis: Nitrogen, Phosphorus, and Potassium
In this experiment, three soil macronutrients are chemically extracted, combined with color-based reagents, then analyzed using color to determine the nutrient concentration present in the soil sample.
Nitrogen, phosphorus, and potassium are the main components of soil fertilizer. These methods isolate each nutrient from the soil into a solution that can be analyzed using turbidity and color to determine the...

