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Pore Size Independent Particle Size Control of Mesoporous N-doped Carbon Nanospheres for 3D Bottom-Up Electrode
Niklas Ortlieb1,2,3,4, María B Camarada1,2,3, Olivia Basu1,2,3
1Institute of Inorganic and Analytic Chemistry, University of Freiburg, Albertstraße 21, 79104, Freiburg, Germany.
Abstract:
The rational design of electrodes is crucial for improving electrochemical energy storage and conversion devices. High-performance devices require porous carbon electrodes with controlled intraparticle properties - such as morphology, size, porosity, elemental composition, and graphitic microstructure - and interparticle features like electrode-level porosity, percolation pathways, and tortuosity, that influence mass transport. Here, mesoporous N-doped carbon (MPNC) nanospheres with independently tunable particle size at a fixed pore size is reported. Extending the previously established synthesis toolbox, independent control over particle and pore sizes is demonstrated. Using a 9 nm SiO2 hard template, particle sizes between 50 and 300 nm is adjusted while maintaining comparable physicochemical properties. These MPNC nanospheres are evaluated as supercapacitor electrodes in coin cells using 1.0 m LiPF6 in EC/DEC as electrolyte. The highest specific capacitance - 67 F g-1 at 0.1 A g-1 - is obtained with the largest particles, attributed to reduced tortuosity and improved electrode percolation. As all samples exhibited similar surface areas (≈950 m2 g-1), performance differences highlight particle size-dependent diffusion limitations. This study establishes a bottom-up approach for engineering electrode architectures, enabling independent control of pore and particle sizes of MPNC nanospheres and providing a platform to systematically investigate their effects on electrochemical performance.

