Materials
Laboratories use many different container materials for handling samples during sample preparation. Some materials are more advantageous to use than others. In this part, we'll look at the properties of borosilicate glass, porcelain, quartz, platinum, graphite, and plastics.
Borosilicate Glass
Borosilicate glass is used extensively. It is resistant to most acids, but should not be used with HF or boiling H₃PO₄. As a general rule, alkaline solutions should not be heated or stored in borosilicate glass. Borosilicate glass can contribute a variety of contaminants. It should not be heated over temperatures achievable using a hot plate (500 °C). For example, if you need to ash a sample using a muffle furnace, do not use borosilicate glass.
Porcelain
Porcelain is a popular material used for ashing purposes. Porcelain contains Na, K, Al, and Si in increasing concentration. It is typically coated with a glaze which is about 70% SiO₂, with roughly equal amounts of the oxides of Al and Ca, and lesser amounts of Na and K. Attack will occur if the sample contains even minor amounts of the alkali metals. This is made evident by a dulling in the normally shiny surface. If alkalis are present, then the sample is typically treated with conc. H₂SO₄ prior to ashing. The following should not be heated in porcelain: HF; boiling H₃PO₄; and the oxides, hydroxides, or carbonates of the alkali or alkaline earth elements. The major advantage of porcelain over glass is that it can be heated up to 1100 °C.
Quartz
There are two types of quartz — opaque and transparent.
- Opaque quartz has the highest trace element concentration and should not be used for trace analysis.
- Transparent quartz comes in four different varieties:
- Types I & II are made from naturally occurring quartz crystals or sands. Type I is created by electric melting and Type II by flame melting. Type II has slightly fewer impurities than Type I (some impurities are volatilized by the flame).
- Type III quartz is made synthetically by vapor phase hydrolysis of pure silicon compounds such as SiCl₄. This type of quartz is more pure than natural quartz, with the exception of Cl⁻, which is ~50 ppm.
- Type IV quartz is synthetically made from SiCl₄ using a process involving electrical fusion of the oxidized starting material. It is as pure as Type III, with respect to trace metal content, and contains far more Cl⁻.
Use the synthetic Type III quartz whenever possible. More details as to the contamination issues around the use of quartz will be discussed in later chapters.
Quartz is typically 99.8+% SiO₂. It is attacked by HF, boiling H₃PO₄, and the alkali and alkaline earth oxides, hydroxides, and carbonates. It can be heated to 1100 °C. Its main advantage over that of porcelain is that major contamination occurs from only Si — however, this contamination can be significant.
Platinum
Platinum, although expensive, is a popular container material. It heats up and cools down rapidly, making it excellent for % ash determinations where the % ash is at low levels.
It is resistant to attack by most acids and reagents. Avoid concentrated H₃PO₄ at high temperatures, HCl + HNO₃ mixtures, and fusions using Li₂CO₃, Na₂O₂, or the alkali hydroxides. Fusions using Na₂CO₃ are common, in addition to fusions using the alkali borates, fluorides, nitrates, and bisulfates. Avoid heating at prolonged temperatures in excess of 1100 °C (m.p. = 1772 °C).
Platinum can be destroyed by heating with metals with which it can alloy. Avoid high-temperature heating with samples containing significant levels of any metal that may be in, or reduced to, the metallic state during the heating process. For example, a sample containing high levels of Cu⁰ or Cu²⁺ should be avoided, especially if present in an organic matrix. A sample containing trace levels of Cu in an organic matrix will not ruin the platinum, but it is likely to be lost to the platinum during the ashing process. Since platinum has this alloying tendency, it is best to avoid its use with samples containing elements other than those that have no tendency to form the metal (i.e., alkali, alkaline, and rare earth elements). Platinum is known to contain trace amounts of the other precious metals and should not be used for their preparation. Avoid samples containing Hg in any form. Hg metal is easily formed and alloys very readily at room temperature with platinum. Also avoid ashing samples containing P in any form, including the phosphates.
Graphite
Graphite is very inexpensive and relatively clean, but very messy to work with. It is an inexpensive way to perform Li₂CO₃ fusions, where the crucible slowly oxidizes away over the course of 7-10 fusions. It is popular because it is not wet by some melts, which can be poured out quantitatively. Losses due to the porosity of graphite should exclude its use for ashing samples containing trace metals. Graphite's main advantage to the trace analyst is being a material that can withstand fusions that might destroy platinum. Our chemists use graphite for performing Li₂CO₃ fusions in the preparation of large numbers of limestone samples for major, minor, and trace elemental analysis.
Plastics
Plastics are very important to the trace analyst. Whenever possible, the analyst should attempt to use plastics for sample collection, storage, preparation, and measurement. Their major disadvantage is the inability to be used for high-temperature operations, such as ashing or fusion. Table 5.1 shows a summary of the physical properties of some common plastics.