High frequency piezoelectric crystal composites, devices, and methods for manufacturing the same
The present invention generally relates to high frequency piezoelectric crystal composites, devices, and method for manufacturing the same. In adaptive embodiments an improved imaging device, particularly a medical imaging device or a distance imaging device, for high frequency (>20 MHz) applications involving an imaging transducer assembly is coupled to a signal imagery processor. Additionally, the proposed invention presents a system for photolithography based micro-machined piezoelectric crystal composites and their uses resulting in improved performance parameters.
1. A piezoelectric PMN-PT based crystal composite, said piezoelectric crystal composite having a crystal composition with one lead-free component, and being represented by the formula:
x *ABO 3 -y*PbTiO 3 -(1- x - y )*Pb(Mg 1/3 Nb 2/3 )O 3 ;
wherein,
x is defined as molar % 0.00 to 0.50;
y is defined as molar % 0.00 to 0.50;
A represents Bismuth (Bi) or Barium (Ba);
B represents one selected from the group consisting of: Indium (In), Ytterbium (Yb), Iron (Fe), Zirconium (Zr), Scandium (Sc), Niobium (Nb), Tantalum (Ta), and a combination of these elements,
wherein when said crystal composite is (011) cut and <011> poled and provides zero strain in the direction of +/−32.5° (+/−2.5°) away from the <011> direction according to the coordinate rotation d 31 formula:
d′ 31 =d 31 *Cos(θ)*Cos(θ)+ d 32 *Sin(θ)*Sin(θ).
2. The piezoelectric al composite, according to claim 1 , in further combination with:
an additive, said additive being selected from the group consisting of: Manganese (Mn) of up to 5% (wt %) and Cerium (Ce) of up to 10% (wt %) of a total batch weight.
3. The piezoelectric crystal composite, according to claim 2 , wherein:
said crystal composite has a thickness electromechanical coupling factor k t of about 0.65 to 0.90.
4. The piezoelectric crystal composite, according to claim 1 , wherein:
said crystal composite is operative at a frequency of at least 20 MHz.
5. The piezoelectric crystal composite, according to claim 4 , wherein:
said crystal composite is operative at a frequency of at least 80 MHz.
6. The piezoelectric crystal composite, according to claim 1 , in further combination with:
a medical imaging device configured for operative ultrasound imaging.