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Title: SEMICONDUCTING MATERIALS FOR THERMOELECTRIC POWER GENERATION

Journal Article · · RCA (Radio Corporation of America) Review (U.S.)
OSTI ID:4838510

Thermoelectric properties of semiconductors suggest that (1) this class of materials can be useful in powergenerating thermocouples operating at least up to 700 deg C, and (2) use of a sandwich-type arrangement or graded alloying in the construction of thermocouple branches will be necessary to achieve high figures of merit over a wide temperature range and, hence, high power-generating efficiencies. Ternary compound semiconductors having the cubic structure were synthesized. Those with the rock-salt structure, such as AgSbTe/sub 2/, are characterized by low lattice thermal conductivities (<0.0075 watt cm/sup -1/ deg/ sup -1/). The lattice thermal conductivity as a function of composition was examined in the alloy systems of AgSbTe/sub 2/ with PbTe, SnTe, and GeTe. The minimum in the lattice thermal conductivity for the AgSbTe/sub 2/ -- PbTe system gives an effective mean free path for phonons which is less than unit-cell dimensions. Measurements of the temperature dependence of thermoelectric properties of a number of solid-solution alloy systems showed that (1) solid- solution ulloys of Bi/sub 2/Te/sub 3/, with Bi/sub 2/Se/sub 3/, Sb/sub 2/Te/sub 3/ , and Sb/sub 2/Se/sub 3/ provided the best p- and ntype material for thermocouple operation at 25 to 250 deg C, (2) the ternary compound AgSbTe/sub 2/ and its alloys with GeTe provided the best p-type material at 250 to 550 deg C, and (3) alloys in the PbTe-- SnTe system provided the best n-type material at 250 to 550 deg C. Power-generating thermocouples, constructed in the sandwich-type arrangement of materials, provided an efficiency of approximately -12 per cent for operation at 20 to 550 deg C (i.e., TH -- TC = 530 deg C). Continuous thermocouple operation for 300 hours resulted in no significant deterioration of material properties. (auth)

Research Organization:
RCA Labs., Princeton, N.J.
NSA Number:
NSA-15-028239
OSTI ID:
4838510
Journal Information:
RCA (Radio Corporation of America) Review (U.S.), Vol. Vol: 22; Other Information: Orig. Receipt Date: 31-DEC-61
Country of Publication:
Country unknown/Code not available
Language:
English