EFFECTS OF HEAT TREATMENT ON BLUE SAPPHIRES AS MONITORED BY ESR SPECTROSCOPY

Author:

UDOMKAN N.1,LIMSUWAN P.1,WINOTAI P.2,MEEJOO S.2

Affiliation:

1. Department of Physics, Faculty of Science, King Mongkut's University of Technology, Thonburi, Prachautid Road, Bangkok 10140, Thailand

2. Department of Chemistry, Faculty of Science, Mahidol University, Rama VI Road, Bangkok 10400, Thailand

Abstract

We report effects of heat treatments on physical properties and finding optimal heating condition to add value to Thai blue sapphires. The color of sapphire arises from the presence of trace 3d-transition ions in its crystal lattice. For blue sapphire, the color is due to a charge transfer mechanism between Fe 2+ and Ti 4+ ions. However, iron may adopt both Fe 3+ and Fe 2+ due to oxygen vacancies. Fe 3+ and Fe 2+ yield sapphire yellow and green colors, respectively. Therefore, we have to convert as many as possible of Fe 3+ to Fe 2+ by heating the blue sapphire in N 2 atmosphere for 12 h. Experimental results reveal that the ratio of lattice parameter c/a increases with the heating temperature and reaches maximum at 1700°C, which can be caused by displacement of Fe 3+ ions or more Fe 3+ ions being converted to Fe 2+. ESR signals show that the number of Fe 3+ ions decreases roughly linearly with the heating temperature. The intense sky blue color was achieved after the 1500°C heat treatment, having the [Formula: see text] ratio ~0.78. The optimal heat treatment should therefore be at 1500°C in flowing N 2 atmosphere for Thai blue sapphires which yield intense sky blue color and good crystal clarity. The blue sapphires exhibited good clarity but light sky blue due to the increase in lightness after the treatment at 1700°C. A monoclinic distortion of the corundum structure has been found to start at the 1600°C treatment by ESR spectrometer. This is also clearly evident from low angle shifts of XRD peaks after heating at 1700°C. We can therefore conclude that the color change of Thai blue sapphires arises from the conversion of Fe 3+ to Fe 2+ and thus the change in crystal field. The monoclinic distortion of the crystal structure may also play an important role in coloring the sapphires after the heat treatment at 1600–1700°C.

Publisher

World Scientific Pub Co Pte Lt

Subject

Condensed Matter Physics,Statistical and Nonlinear Physics

Reference13 articles.

1. R. Hughes, Ruby & Sapphire (While Lotus Co., Bangkok, 1990) p. 104.

2. OPTIMIZATION OF HEAT TREATMENTS OF VIETNAMESE RUBIES

3. C. Kittel, Introduction to Solid State Physics, 6th edn. (John Wiley, New York, 1991) p. 513.

4. Visible charge transfer band in blue sapphire

5. K. Nassau, Physics and Chemistry of Color (John Wiley, New York, 2001) p. 80.

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