|
|
| Atomistry » Sodium | ||
|
Atomistry » Sodium » Isotopes » Energy » Preparation » Applications » Physical Properties » Chemical Properties » PDB 10da-13lk » PDB 13ll-1b5y » PDB 1b7l-1c4s » PDB 1c4u-1d7s » PDB 1d7u-1eq4 » PDB 1eq5-1g97 » PDB 1ga0-1gfk » PDB 1gfr-1hbn » PDB 1hbo-1ix0 » PDB 1iyn-1jz8 » PDB 1jzn-1ktw » PDB 1kvq-1m0p » PDB 1m0q-1na0 » PDB 1nah-1o4z » PDB 1o5g-1p59 » PDB 1p9e-1qj3 » PDB 1qjd-1s06 » PDB 1s07-1sue » PDB 1sup-1tx3 » PDB 1txk-1uyp » PDB 1uyz-1vqp » PDB 1vr5-1wy4 » PDB 1wyw-1y3b » PDB 1y3c-1ypl » PDB 1yq2-1zqg » PDB 1zqh-292d » PDB 293d-2aq2 » PDB 2asf-2ble » PDB 2bmi-2c9a » PDB 2c9r-2d3n » PDB 2d4d-2e7z » PDB 2e84-2elc » PDB 2eld-2fqe » PDB 2fqg-2gg9 » PDB 2ggb-2gw0 » PDB 2gws-2huv » PDB 2hwl-2iwk » PDB 2iy6-2mee » PDB 2mef-2omg » PDB 2omh-2p2z » PDB 2p3f-2poc » PDB 2pod-2qey » PDB 2qf1-2r5o » PDB 2r5p-2v3h » PDB 2v3o-2vv7 » PDB 2vv8-2wdv » PDB 2wdy-2wp9 » PDB 2wpc-2x7a » PDB 2x7f-2xjv » PDB 2xjw-2y03 » PDB 2y04-2ygm » PDB 2ygo-2zhj » PDB 2zhq-32qu » PDB 352d-3agg » PDB 3agh-3awe » PDB 3axg-3be8 » PDB 3beu-3c45 » PDB 3c4u-3cma » PDB 3cmb-3d97 » PDB 3d9r-3dux » PDB 3dym-3elf » PDB 3ems-3f66 » PDB 3f68-3foj » PDB 3fp4-3g7r » PDB 3g8q-3gwu » PDB 3gwv-3hpt » PDB 3hsc-3i6o » PDB 3i6v-3irs » PDB 3iru-3k2o » PDB 3k2q-3l6t » PDB 3l7x-3m1e » PDB 3m1h-3mnh » PDB 3mni-3muz » PDB 3mv0-3nko » PDB 3nkp-3ob8 » PDB 3obp-3ov1 » PDB 3ov9-3pj0 » PDB 3pjk-3pws » PDB 3pxs-3qi6 » PDB 3qjx-3r2l » PDB 3r2m-3rly » PDB 3rm0-3sce » PDB 3scy-3sxq » PDB 3sxt-3tfj » PDB 3tfr-3txd » PDB 3txe-3ui6 » PDB 3ul5-3uww » PDB 3uxp-3vey » PDB 3vf5-3w6p » PDB 3w8d-3wul » PDB 3wum-3zpq » PDB 3zpr-4a7d » PDB 4a81-4ayp » PDB 4ayq-4bdq » PDB 4bdr-4c10 » PDB 4c1d-4ch8 » PDB 4chi-4d7a » PDB 4d7c-4drr » PDB 4drt-4ecz » PDB 4ed0-4exq » PDB 4exr-4fkp » PDB 4flg-4g8j » PDB 4g8t-4grn » PDB 4grx-4ha4 » PDB 4had-4htk » PDB 4htn-4i9x » PDB 4ia5-4irz » PDB 4is9-4j9m » PDB 4j9w-4jra » PDB 4jrx-4kaf » PDB 4kaj-4ktb » PDB 4ku0-4ld7 » PDB 4lde-4lxb » PDB 4lxh-4mao » PDB 4map-4mq5 » PDB 4mr1-4nhp » PDB 4nhq-4nte » PDB 4ntl-4o54 » PDB 4o57-4oqc » PDB 4oqv-4p9p » PDB 4pa3-4pme » PDB 4pmf-4pyk » PDB 4pyq-4qgp » PDB 4qh1-4qzd » PDB 4qze-4rfl » PDB 4rgu-4rzm » PDB 4rzr-4u3e » PDB 4u3z-4und » PDB 4unq-4v0v » PDB 4v15-4wpk » PDB 4wr8-4xav » PDB 4xb1-4xle » PDB 4xlf-4xpa » PDB 4xpb-4ydd » PDB 4ydj-4yxl » PDB 4yxw-4zh5 » PDB 4zhk-5a3m » PDB 5a3w-5axc » PDB 5axo-5bmx » PDB 5bn8-5c6c » PDB 5c6m-5cof » PDB 5com-5d8h » PDB 5d8x-5drg » PDB 5drh-5eh7 » PDB 5ehv-5ewm » PDB 5exe-5fgw » PDB 5fh0-5g01 » PDB 5g0c-5gnd » PDB 5goc-5hjg » PDB 5hk7-5i6x » PDB 5i71-5ijq » PDB 5ijs-5j0t » PDB 5j0u-5jei » PDB 5jen-5k2d » PDB 5k4v-5ksf » PDB 5ksg-5l3e » PDB 5l3g-5ljz » PDB 5lk0-5lz9 » PDB 5lzq-5mc2 » PDB 5mc3-5mlx » PDB 5mm6-5n5f » PDB 5n7m-5nkq » PDB 5nls-5o4h » PDB 5o65-5olo » PDB 5olv-5pob » PDB 5poc-5ppf » PDB 5ppg-5pqj » PDB 5pqk-5prq » PDB 5prr-5psu » PDB 5psv-5pu1 » PDB 5pu2-5pv5 » PDB 5pv6-5pw9 » PDB 5pwa-5rd3 » PDB 5rd5-5sxq » PDB 5sxr-5t9c » PDB 5t9x-5tua » PDB 5tvo-5u20 » PDB 5u21-5ugs » PDB 5uih-5v01 » PDB 5v04-5v95 » PDB 5v97-5vpd » PDB 5vpe-5w7w » PDB 5w8o-5ws7 » PDB 5wuc-5xlj » PDB 5xm5-5yl8 » PDB 5yo1-5zcp » PDB 5zcq-5zpo » PDB 5zpp-6aa9 » PDB 6abn-6awo » PDB 6awp-6bav » PDB 6bcj-6bvm » PDB 6bwi-6cbk » PDB 6cbv-6crh » PDB 6cs8-6cy6 » PDB 6cym-6dj2 » PDB 6dj5-6e7j » PDB 6e7r-6enk » PDB 6enp-6f0z » PDB 6f10-6fhj » PDB 6fhn-6g2u » PDB 6g2w-6ghg » PDB 6ghj-6h0w » PDB 6h0y-6hdk » PDB 6hdl-6hwp » PDB 6hwr-6i98 » PDB 6i9a-6j0h » PDB 6j37-6k17 » PDB 6k21-6l55 » PDB 6l56-6m3z » PDB 6m47-6mv4 » PDB 6mvt-6ndc » PDB 6ndd-6nuc » PDB 6nuf-6okz » PDB 6ol0-6p1v » PDB 6p1w-6ps7 » PDB 6pte-6q9s » PDB 6qaf-6qrt » PDB 6qru-6r6a » PDB 6r6d-6rgr » PDB 6rgu-6rwd » PDB 6rx8-6sdl » PDB 6se8-6su0 » PDB 6su8-6tb1 » PDB 6tb7-6tlr » PDB 6tls-6txb » PDB 6txd-6utn » PDB 6uto-6vel » PDB 6vez-6vuy » PDB 6vv1-6wjo » PDB 6wjt-6x3q » PDB 6x4i-6xtg » PDB 6xus-6ybz » PDB 6yc0-6yoe » PDB 6yq1-6z5c » PDB 6z5d-6zjp » PDB 6zjq-7a1i » PDB 7a1r-7akc » PDB 7akt-7b2c » PDB 7b3e-7bm0 » PDB 7bmo-7cdn » PDB 7cdo-7d2a » PDB 7d2r-7dln » PDB 7dnb-7evk » PDB 7evl-7g2v » PDB 7g2w-7g3z » PDB 7g40-7g5j » PDB 7g5k-7g6q » PDB 7g6r-7g7v » PDB 7g7w-7i1e » PDB 7i1f-7jgk » PDB 7jgo-7k89 » PDB 7k96-7kt4 » PDB 7kt5-7l2s » PDB 7l2t-7lpf » PDB 7lpl-7m49 » PDB 7m4a-7mim » PDB 7min-7n5c » PDB 7n5p-7nuz » PDB 7nwr-7oin » PDB 7oiy-7p8p » PDB 7p8z-7q1n » PDB 7q1o-7qtd » PDB 7qte-7rhs » PDB 7ris-7s2b » PDB 7s2c-7sb8 » PDB 7scm-7stu » PDB 7stv-7tum » PDB 7tvf-7uqa » PDB 7urp-7w3e » PDB 7w45-7x9i » PDB 7x9j-7ya4 » PDB 7ya9-7zb0 » PDB 7zb1-7zso » PDB 7zsp-8a4u » PDB 8a4w-8b45 » PDB 8b4f-8bo8 » PDB 8bpy-8cix » PDB 8ciy-8cw0 » PDB 8cw1-8d61 » PDB 8d62-8de4 » PDB 8dek-8dyz » PDB 8dz7-8etz » PDB 8eu0-8fp6 » PDB 8fp7-8fws » PDB 8fwu-8gsg » PDB 8gt0-8hwk » PDB 8hwn-8ics » PDB 8ict-8jnc » PDB 8jno-8oju » PDB 8ok3-8p5a » PDB 8p5b-8pxt » PDB 8pxv-8qk0 » PDB 8qk4-8r7m » PDB 8r7o-8ru4 » PDB 8ruk-8sjj » PDB 8skl-8t3m » PDB 8t7i-8u0r » PDB 8u2a-8umz » PDB 8uq8-8vb3 » PDB 8vdw-8vmz » PDB 8vn0-8w0d » PDB 8w1w-8wug » PDB 8wxd-8yec » PDB 8yh4-9avk » PDB 9azg-9cld » PDB 9cp6-9dpw » PDB 9dpx-9evk » PDB 9evu-9fdh » PDB 9fdj-9fw6 » PDB 9fym-9h0n » PDB 9h0o-9i2p » PDB 9i49-9icw » PDB 9icx-9jkj » PDB 9jln-9kvu » PDB 9kw9-9m0b » PDB 9m0v-9mvj » PDB 9mw5-9o07 » PDB 9o0o-9p5g » PDB 9p5q-9pqk » PDB 9pql-9qys » PDB 9qyt-9rwd » PDB 9rws-9t6y » PDB 9t8z-9utd » PDB 9uyr-9vsf » PDB 9vvs-9wmp » PDB 9wnt-9y48 » PDB 9y9d-9zz5 » |
Element Sodium Na, Alkali MetalAbout Sodium
The chemical relations of sodium are very similar to those of potassium, so that for chemical purposes the one metal can in most cases replace the other. This holds good especially for those reactions in which the ions come into account. The reason of this is that natrion also represents a far more stable state than metallic sodium, and the reactions of this element, as in the case of potassium, are therefore chiefly characterised by the fact that the ion is formed with especial readiness from the metal, but the metal only with difficulty from the ion. Since, further, the state of the salts in the solid form approaches more nearly to that of the ions than to that of the metal, sodium, like potassium, will be easily transformed from one of its salts into another, but will be converted only with difficulty from a salt into the metal or a compound closely related to this.
Metallic sodium does not occur in nature, since it would everywhere have an opportunity of exercising its tendency to pass into natrion. Natrion, however, has an extensive distribution, and, along with chloridion, with which it occurs in sea-water, it may be regarded as the most abundant ion in those parts of the earth's surface which are accessible to us. In more remote times, the compounds of the two elements potassium and sodium were confused with one another. When it was learned how to distinguish them, caustic potash was known as the vegetable, and caustic soda as the mineral alkali, because the former was obtained chiefly from the ash of plants, the latter from common salt. It was later found by Klaproth that both elements are present in the mineral kingdom. So far as the vegetable kingdom is concerned, an essential difference does certainly exist between the two elements, for compounds of potassium must be present in considerable amount in plants in order that these may develop normally. Sodium compounds, it is true, are never wanting in plants, but they are more chance constituents which pass into the plants from the soil, in which they are always present, and seem not to play any particular part in them. Although, therefore, normal vegetation may be hindered by an entire exclusion of sodium compounds (although no indubitable evidence on this point exists), it is certain that the quantities of sodium which may possibly be necessary for a plant are incomparably smaller than the amounts of potassium which are indispensable. The cause of this difference may be found in the following circumstance. Whereas the soil in which plants thrive has the remarkable property of withdrawing dissolved potassium compounds from solution, and retaining them in such a way that they can be taken up only in a very slight degree by water, the behaviour is quite different with respect to the sodium compounds. These are not retained by the soil, but filter through without difficulty. Whereas, therefore, the amount of potassium compounds in the soil is considerable and almost independent of chance conditions, the amount of the sodium compounds is subject to variation and to chance. On the principle of the survival of the fittest, it is intelligible that the chemical requirements of the plants, the satisfaction of which is effected by an alkali metal (or its ion), should be supplied by the constantly present potassium, since organisms whose life depended on utilising sodium compounds would die out by reason of the readily occurring lack of these. The accumulation of natrion in sea-water is due to the same cause. When in the decomposition of the rocks by water and carbonic acid, the alkali metals pass into solution in the form of their ions, they follow, in the first instance, the general movement of the water towards the ocean. The potassium, however, is mostly retained on the way, because it is seized hold of by the soil; the sodium, however, passes on unhindered to the sea, and is deposited again in the solid form only in rare cases, viz. when the sea-water is concentrated by evaporation until the solid salt forms. Cases of this have occurred, especially in former geological periods, and have given rise to beds of rock-salt or sodium chloride, the two ions which are present in greatest abundance in sea-water having been deposited together as solid salt. Metallic Sodium
We have already, on several occasions, become acquainted with metallic sodium as a silver white, soft, and readily fusible metal, which reacts energetically in contact with water, and just as readily forms compounds with many other substances. It behaves, in general, quite similarly to potassium, from which it is distinguished by the somewhat inferior violence of its reactions.
Thus, sodium does not take fire when thrown on water; it does so, however, if its motion and the cooling which is thereby effected is prevented. This happens when the metal is placed on wet paper or on an aqueous jelly of glue or of starch. The evolved hydrogen as well as a portion of the metal then burns with a bright yellow flame, and all the flames in a room in which such a combustion has occurred burn distinctly yellow for a considerable time. This is due to the fact that the dissipated sodium compounds colour the flames yellow, even when present in the minutest quantities. Sodium melts at 97.5°, and boils at about 740°. The accurate determination of its vapour density is difficult, but the experiments which have been made agree in showing that the molar weight of sodium vapour is 23, or equal to the combining weight. This identity is a general property of the metals, so far as these are known in the vapour form, and less doubtful cases of the confirmation of this rule will be given later. By mixture with other metals, the melting point of sodium is lowered. This is especially well seen on adding potassium; in this way alloys can easily be obtained which are liquid at the room temperature. This phenomenon is by no means to be explained as a consequence of chemical combination between the metals; on the contrary, it is the simple consequence of the perfectly general fact that the melting point of every substance is lowered by the addition of such substances as are soluble in the liquid form of the first substance. If the melting point of the pure substance is not too high above room temperature, it may be lowered to below this temperature, and the phenomenon in question makes its appearance. The first preparation of metallic sodium was effected by Davy by means of the voltaic pile at the same time as that of potassium. Shortly afterwards the method of obtaining it by distillation of sodium carbonate with charcoal was discovered, corresponding to the method mentioned under potassium. Since about 1860, sodium has been obtained on the large scale by this method, the metal being used for preparing aluminium. Recently, however, the electrical method has again been adopted, and sodium is obtained by the decomposition of sodium hydroxide by means of the electric current. By reason of the comparatively small cost of electrical energy, combined with the good yield obtained, sodium can be obtained more cheaply by this than by the old method. It is remarkable that this method is identical with that by which sodium was first prepared, for on that occasion also, sodium hydroxide was the original substance. The electrolysis is carried out in iron pots divided by permeable partitions. At the anode oxygen escapes, at the cathode sodium and hydrogen are formed. The separated metal is lighter than the liquid hydroxide, and therefore floats to the surface; it is skimmed off from time to time. Sodium can also be obtained by the electrolysis of fused sodium chloride. Much difficulty, however, is caused by the high melting point of this salt. The melting point can be lowered by mixing it with potassium chloride; mixtures of sodium with a little potassium are then obtained, but not the pure metal. For this reason, successful attempts have also been made to employ the readily fusible sodium nitrate for the electrolysis. Metallic sodium is largely used in the arts and in the laboratory. Its former importance for obtaining other difficultly reducible metals has been lost, since the object can generally be attained more readily by means of magnesium or aluminium, or by the electrolytic method. It is used, however, as a powerful reducing agent in many reactions in organic chemistry, and for obtaining reactive intermediate products. For these purposes, the metal is best employed in a condition in which it offers a large surface. Since, on account of the softness of the metal, it cannot be reduced to small pieces by blows or by filing, it is forced, by means of an iron screw press, through narrow openings, and is thus obtained in the form of wire or of ribbon, according to the shape of the opening. Since in this state the metal very rapidly oxidises in the air, the wire is allowed to fall directly into the liquid on which it is to act, or it is collected in a liquid which does not contain oxygen. Petroleum, which is usually employed for this purpose, has the disadvantage that it is difficult to remove; for chemical purposes, therefore, it is better to use readily volatile hydrocarbons obtained from the low-boiling portions of petroleum (so-called petroleum benzine or petroleum ether). Sodium Occurrence
Although sodium in the free state is not found in nature, it is present in combination in most minerals. Soda-felspar or albite is a double silicate of sodium and aluminium, 3Na2O,Al2O3,6SiO2. Sea-water contains 2.6 to 2.9 per cent, of sodium chloride, NaCl, the deposits left by the evaporation of inland seas being known as rock-salt Both the carbonates and the sulphate of sodium occur dissolved in the water of many mineral springs, while the sulphate is a constituent of certain double salts, such as glauberite or sodium calcium sulphate, and blodite or sodium magnesium sulphate. Great deposits of Chile saltpetre or sodium nitrate, NaNO3, are present in Chile. Cryolite or sodium aluminium fluoride, 3NaF,AlF3, is an important mineral found in Greenland. Sodium carbonate occurs in South America and Egypt, and is also found as gaylussite, a double carbonate of sodium and calcium. Tincal or disodium tetraborate, Na2B4O7,10H2O, is native to Thibet, India, and California, and a double borate of sodium and calcium called cryptomorphite is also found.
Sodium History
The knowledge of sodium carbonate or "soda" is of great antiquity, as indicated by two references in the Bible. The word translated " nitre " in the Authorized Version means " natron " or " soda," and is correctly rendered "lye" in Jer. II. 22 in the Revised Version. No alteration has been made in the other reference. The confusion of terms evidently originated in the resemblance between the Greek vcrpov employed by Dioscorides and the Latin nitrum used by Pliny to denote sodium carbonate, and the word " nitre," loosely employed in early English as synonymous with "natron" or "soda," but now reserved for potassium nitrate.
In the sixteenth century Biringuccio seems to have appreciated the distinction between "nitrum" or soda and "sal nitri" or saltpetre. Somewhat earlier the Arabs introduced into Europe the words "natrun," "natrum," and "natron," signifying soda, and " nitrum," meaning saltpetre. They also introduced the word "alkali", but drew no distinction between soda, derived from the ashes of sea-plants, and potash, obtained from the ashes of land-plants. These substances were denominated " fixed alkali" in contradistinction to the volatile ammonium carbonate. In 1736 Duhamel de Monceau noted the difference between the "mineral alkali" or soda obtained from rock-salt and the "vegetable alkali" or potash extracted from plant-ashes. Marggraf recorded the difference in flame-coloration produced by the two substances, and in 1796 Klaproth discovered the presence of "vegetable alkali" in the mineral world as leucite. At an earlier date it was noticed that the so-called "mild alkali" or sodium carbonate is converted into "caustic alkali," or sodium hydroxide (in modern parlance), by the action of slaked lime, and in 1756 Black proved the presence of "fixed air" (carbon dioxide) in the "mild alkali." In 1807 Davy isolated the alkali-metals by electrolysis of the fused hydroxides, thus proving the invalidity of Lavoisier's conception of the oxides as elementary substances. Neighbours |
Last articlesZn in 9ZLYZn in 9ZPK Zn in 9ZPL Zn in 9ZM2 Zn in 9ZO4 Zn in 9ZO5 Zn in 9ZOH Zn in 9ZOF Zn in 9ZIQ Zn in 9ZD4 |
| © Copyright 2008-2020 by atomistry.com | ||
| Home | Site Map | Copyright | Contact us | Privacy | ||