4.6 Article

Process Map for the Hydrothermal Synthesis of α-Fe2O3 Nanorods

Journal

JOURNAL OF PHYSICAL CHEMISTRY C
Volume 113, Issue 43, Pages 18689-18698

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jp907081j

Keywords

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Funding

  1. EPSRC
  2. Department of Mechanical, Materials
  3. Manufacturing Engineering
  4. The University of Nottingham, United Kingdom

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A process map for the hydrothermal synthesis (HS) of single crystalline alpha-Fe2O3 nanorods from aqueous FeCl3 is presented, as a function of temperature, time, and phosphate concentration, as assessed using the combined techniques of X-ray diffractometry, transmission electron microscopy, selected area electron diffraction, Fourier transform infrared spectrometry, and X-ray photoelectron spectroscopy. The process map provides insight into the nature of intermediate beta-FeOOH nanorod precipitation, dissolution and subsequent alpha-Fe2O3 growth, along with the effect of PO43- anion concentration on the alpha-Fe2O3 particle shape. Increasing the processing temperature in the absence of 4 surfactant promoted the dissolution of initially formed beta-FeOOH nanorods and the nucleation and growth of equiaxed alpha-Fe2O3 nanoparticles with rhombohedral morphology. Increasing additions of phosphate surfactant resulted in a shape change of the alpha-Fe2O3 nanoparticles into lenticular alpha-Fe2O3 nanorods with increasing aspect ratio but with progressive inhibition of alpha-Fe2O3 phase formation. Increasing the synthesis temperature in the presence of PO43- anions was associated with the recovery of well-defined single crystal, lenticular nanorods. Increasing the time of synthesis in the presence of PO43- anions was similarly associated with the progressive formation and dissolution of beta-FeOOH and the growth of well-defined lenticular alpha-Fe2O3 nanorods. An HS processing temperature of 200 degrees C and an Fe3+-PO43- molar ratio of 31.5 yielded optimized crystalline lenticular alpha-Fe2O3 nanorods with an aspect ratio of similar to 7. Chemical analysis indicated that some P was retained within the bulk of the developed alpha-Fe2O3 nanorods.

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