Metal hexaboride cold field emitter, method of fabricating same, and electron gun
A metal hexaboride nanowire such as LaB 6 with the formed metal-terminated (100) plane at the tip has a small work function, and can emit a very narrow electron beam from the (100) plane. In such emitters, contamination occurs in a very short time period, and the output current greatly decreases when used under low temperature. The cold field emitter of the present invention overcomes this problem with a stabilization process that exposes the metal-terminated (100) plane of the tip to hydrogen at low temperature, and can stably operate over extended time periods.
1. A metal hexaboride cold field emitter comprising a metal hexaboride nanorod ending at a tip having a hydrogen-stabilized metal-terminated (100) plane.
2. The metal hexaboride cold field emitter according to claim 1 , wherein the nanorod is a monocrystal that extends in a <100> direction.
3. The metal hexaboride cold field emitter according to claim 1 , wherein the tip is shaped into a hemispherical form.
4. The metal hexaboride cold field emitter according to claim 1 , wherein the nanorod has a diameter in a range of 10 to 300 nm.
5. The metal hexaboride cold field emitter according to claim 1 , wherein the metal hexaboride is LaB 6 .
6. An electron gun that comprises the metal hexaboride cold field emitter of claim 1 .
7. The electron gun according to claim 6 , wherein the electron gun comprises:
a cooling device connected to the metal hexaboride cold field emitter via an electrically insulating heat conductor; and
a hydrogen nozzle through which hydrogen is introduced.