1461166328-d9a5b260-c6bd-4b87-8c19-f46a0be1ee20

1. A seed of cotton cultivar DP 110 RF, wherein a representative sample of seed of said cultivar was deposited under ATCC Accession No. PTA-7836.
2. A cotton plant, or a regenerable part thereof, produced by growing the seed of claim 1.
3. A tissue culture of cells produced from the plant of claim 2, wherein said cells of the tissue culture are produced from a plant part selected from the group consisting of leaves, pollen, embryos, cotyledons, hypocotyl, meristematic cells, roots, root tips, pistils, anthers, flowers, and stems.
4. A protoplast produced from the plant of claim 2.
5. A protoplast produced from the tissue culture of claim 3.
6. A cotton plant regenerated from the tissue culture of claim 3, wherein the plant has all of the morphological and physiological characteristics of cultivar DP 110 RF listed in Table 1, wherein a representative sample of seed was deposited under ATCC Accession No. PTA-7836.
7. A method for producing an F1 hybrid cotton seed, wherein the method comprises crossing the plant of claim 2 with a different cotton plant and harvesting the resultant F1 hybrid cotton seed.
8. A hybrid cotton seed produced by the method of claim 7.
9. A hybrid cotton plant, or a regenerable part thereof, produced by growing said hybrid seed of claim 8.
10. A method of producing an herbicide resistant cotton plant, wherein the method comprises transforming the cotton plant of claim 2 with a transgene wherein the transgene confers resistance to an herbicide selected from the group consisting of imidazolinone, sulfonylurea, glyphosate, glufosinate, L-phosphinothricin, triazine and benzonitrile.
11. An herbicide resistant cotton plant produced by the method of claim 10.
12. A method of producing an insect resistant cotton plant, wherein the method comprises transforming the cotton plant of claim 2 with a transgene that confers insect resistance.
13. An insect resistant cotton plant produced by the method of claim 12.
14. The cotton plant of claim 13, wherein the transgene encodes a Bacillus thuringiensis endotoxin.
15. A method of producing a disease resistant cotton plant, wherein the method comprises transforming the cotton plant of claim 2 with a transgene that confers disease resistance.
16. A disease resistant cotton plant produced by the method of claim 15.
17. A method of producing a cotton plant with modified fatty acid metabolism or modified carbohydrate metabolism, wherein the method comprises transforming the cotton plant of claim 2 with a transgene encoding a protein selected from the group consisting of phytase, fructosyltransferase, levansucrase, \u03b1-amylase, invertase and starch branching enzyme or encoding an antisense of stearyl-ACP desaturase.
18. A cotton plant having modified fatty acid metabolism or modified carbohydrate metabolism produced by the method of claim 17.
19. A method of introducing a desired trait into cotton cultivar DP 110 RF, wherein the method comprises:
(a) crossing a DP 110 RF plant, wherein a representative sample of seed was deposited under ATCC Accession No. PTA-7836, with a plant of another cotton cultivar that comprises a desired trait to produce progeny plants wherein the desired trait is selected from the group consisting of male sterility, herbicide resistance, insect resistance, modified fatty acid metabolism, modified carbohydrate metabolism, and resistance to bacterial disease, fungal disease or viral disease;
(b) selecting one or more progeny plants that have the desired trait to produce selected progeny plants;
(c) crossing the selected progeny plants with the DP 110 RF plants to produce backcross progeny plants;
(d) selecting for backcross progeny plants that have the desired trait and all of the physiological and morphological characteristics of cotton cultivar DP 110 RF listed in Table 1 to produce selected backcross progeny plants; and
(e) repeating steps (c) and (d) three or more times in succession to produce selected fourth or higher backcross progeny plants that comprise the desired trait and all of the physiological and morphological characteristics of cotton cultivar DP 110 RF listed in Table 1.
20. A cotton plant produced by the method of claim 19, wherein the plant has the desired trait and all of the physiological and morphological characteristics of cotton cultivar DP 110 RF listed in Table 1.
21. The cotton plant of claim 20, wherein the desired trait is herbicide resistance and the resistance is conferred to an herbicide selected from the group consisting of imidazolinone, sulfonylurea, glyphosate, glufosinate, L-phosphinothricin, triazine and benzonitrile.
22. The cotton plant of claim 20, wherein the desired trait is insect resistance and the insect resistance is conferred by a transgene encoding a Bacillus thuringiensis endotoxin.
23. The cotton plant of claim 20, wherein the desired trait is modified fatty acid metabolism or modified carbohydrate metabolism and said desired trait is conferred by a nucleic acid encoding a protein selected from the group consisting of phytase, fructosyltransferase, levansucrase, \u03b1-amylase, invertase and starch branching enzyme, or encoding an antisense of stearyl-ACP desaturase.
24. A method of producing a commodity plant product comprising obtaining the plant or plant part of claim 2 and producing said commodity plant product therefrom, wherein said commodity plant product is lint or cotton seed oil.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. An optical pickup comprising:
a light source for emitting light;
an objective lens for condensing light emitted from said light source on a recording medium;
a first detector for detecting a first RF signal, with a first frequency characteristic including direct-current (DC), an amount of which is proportional to a total amount of light reflected by the recording medium and an error signal at a focus position of said objective lens;
a second detector for detecting a second RF signal, with a second frequency characteristic at a higher range than the first frequency characteristic, an amount of which is proportional to the total amount of the reflected light from the recording medium; and
a first controller for controlling a sensitivity of said first detector and a sensitivity of said second detector, and
a second controller for adjusting a timing of said first and second RF signals and then band-synthesizing said first and second RF signals;
wherein said first detector and said second detector are provided independently of each other.
2. The optical information reproduction system according to claim 1, further comprising a read-out signal selector for cancelling the band synthesis of said first and second RF signals in accordance with a data reading rate.
3. An optical information reproduction system comprising:
a light source for emitting light;
an objective lens for condensing light emitted from said light source on a recording medium;
a servo signal detector for detecting a first RF signal, an amount of which is proportional to a total amount of light reflected by the recording medium and a servo signal;
an RF-signal exclusive detector located independently of said servo signal detector for detecting a second RF signal with a frequency range higher than that of the first RF signal, an amount of which is proportional to the total amount of the reflected light from the recording medium;
a decoder for band-synthesizing said first and second RF signals and decoding information from the band-synthesized RF signal; and
a delay time variable controller for adjusting a delay time difference between said first and second RF signals.
4. The optical information reproduction system according to claim 3, wherein said delay time variable controller is provided for any of said first and second RF signals.
5. The optical information reproduction system according to claim 3, wherein said delay time variable controller weights and averages a train of sample signals sampled at intervals of a constant time to adjust a delay time.
6. The optical information reproduction system according to claim 3, wherein said delay time variable controller selects the delay time according to a type of said recording medium.
7. The optical information reproduction system according to claim 3, wherein said delay time variable controller selects the delay time according to a playback speed.
8. The optical information reproduction system according to claim 3, wherein said decoder selects said band-synthesized readout signal after band-synthesis and said second RF signal as for RF signals for use in decoding according to the type of the recording medium.
9. The optical information reproduction system according to claim 3, wherein said decoder selects said band-synthesized readout signal after band synthesis and said second RF signal as for RF signals for use in decoding according to a playback speed.
10. The optical information reproduction system according to claim 3, wherein, when said band-synthesizer is mounted on a movable pickup, a delay time switching signal line is provided for selecting a delay time correction for any of said first and second RF signals between a pickup side and a fixed circuit board side.
11. The optical information reproduction system according to claim 3, wherein, when said band-synthesizer is mounted on a movable pickup, a sensitivity switching signal line is provided for selecting a sensitivity of a photocurrent amplifier according to a type of the medium and to a playback speed, and a correcting-gain switching signal line is provided for selecting a gain correction of any of said first and second RF signals between a pickup side and a fixed circuit board side.
12. The optical information reproduction system according to claim 3, wherein an electrically-readablewritable memory element is provided on a movable pickup, and the delay time of any of said first and second RF signals is selected according to the type of the recording medium or to a speed rate on the basis of information recorded in said memory element.
13. The optical information reproduction system according to claim 3, further comprising a read-out signal selector for cancelling the band synthesis of said first and second RF signals in accordance with a data reading rate.
14. An optical information reproduction system comprising:
a light source for emitting light to a recording medium;
a servo signal detector for obtaining a position error signal of a focus position of an objective lens on the basis of a light quantity difference of reflected light; and
an RF signal detector located independently of said servo signal detector;
wherein said information reproduction system outputs a first RF signal obtained from said RF signal detector and a second RF signal obtained from said servo signal detector,
wherein said first RF signal and said second RF signal are proportional to a total amount of light reflected from the recording medium,
wherein said first RF signal has a higher frequency range than said second RF signal, and
wherein an electrically-readablewritable memory element records information about sensitivity or adjusts timing of said first and second RF signals for band-synthesizing said first and second RF signals in said memory element.
15. The optical information reproduction system according to claim 14, wherein a read-out signal selector is provided to skip the band synthesis of said first and second RF signals in accordance with a data reading rate, and the first RF signal is selected for the decoding of information recorded in the recording medium.
16. The optical information reproduction system according to claim 14, wherein said first RF signal and said second RF signal are band-synthesized to obtain a synthesized readout signal and to decode information, and a sensitivity or gain of any of said first and second RF signals is adjusted on the basis of information of said readablewritable memory element.

1461166319-1443d257-7ee3-42b8-b962-2de464110daa

1. A wood protection paint comprising a copolymer emulsion prepared by an emulsion polymerization process comprising:
(a) polymerizing, in a first stage and under ethylene pressure, a first monomer composition comprising from 60 weight percent to 95 weight percent of at least one vinyl ester, and from 5 weight percent to 40 weight percent ethylene to produce a first stage product having a glass transition temperature Tg of less than 25\xb0 C.; and
(b) polymerizing, in a second stage and in the presence of said first stage product, a second monomer composition such that the polymer produced by said second monomer composition has a glass transition temperature Tg of at least 95\xb0 C.
2. A wood protection paint according to claim 1, wherein the vinyl ester is vinyl acetate.
3. A wood protection paint according to claim 1, wherein the copolymer produced by said first monomer composition has a glass transition temperature Tg in the range of 5\xb0 C. to 15\xb0 C.
4. A wood protection paint according to claim 1, wherein the first monomer composition further comprises from 0.05 weight percent to 5 weight percent of at least one of an ethylenically unsaturated mono- andor dicarboxylic acid, an ethylenically unsaturated sulfonic acid, an ethylenically unsaturated phosphoric acid, an ethylenically unsaturated phosphonic acid, and an amide of an ethylenically unsaturated mono- andor dicarboxylic acid.
5. A wood protection paint according to claim 1, wherein the polymer produced by said second monomer composition has a glass transition temperature Tg from 95 to 170\xb0 C., preferably from 95\xb0 C. to 160\xb0 C., more preferably from 95\xb0 C. to 150\xb0 C.
6. A wood protection paint according to claim 1, wherein the second monomer composition comprises at least 90 weight percent of a meth(acrylic) ester or a mixture of at least two different (meth)acrylic esters selected
7. A wood protection paint according to claim 1, wherein the second monomer composition comprises at least 90 weight percent of methyl methacrylate, cyclohexyl methacrylate, isobornyl methacrylate or a mixture thereof.
8. A wood protection paint according to claim 1, wherein the second monomer composition comprises at least 90 weight percent of a mixture of methyl methacrylate with an acrylic ester selected from the group consisting of butyl acrylate and ethylhexyl acrylate.
9. A wood protection paint according to claim 1, wherein the second monomer composition further comprises from 0.05 weight percent to 5 weight percent of at least one of an ethylenically unsaturated mono- andor dicarboxylic acid, an ethylenically unsaturated sulfonic acid, an ethylenically unsaturated phosphoric acid, an ethylenically unsaturated phosphonic acid, and an amide of an ethylenically unsaturated mono- andor dicarboxylic acid.
10. A wood protection paint according to claim 1, wherein the weight ratio of the first monomer composition to the second monomer composition is in the range 60:40 to 95:5.
11. A wood protection paint according to claim 1, wherein each of the first and second monomer compositions additionally comprises an anionic emulsifier.
12. A wood protection paint according to claim 1, wherein each of the first and second monomer compositions additionally comprises a nonionic emulsifier.
13. A wood protection paint according to claim 1 and further comprising at least one pigment.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. A high energy, high repetition rate workpiece surface heating mechanism comprising:
a pulsed XeF laser operating at or above 4000 Hz and producing a laser output light pulse beam at a center wavelength of about 351 nm;
an optical system narrowing the laser output light pulse beam to less than 20 \u03bcm in a short axis of the laser output light pulse beam and expanding the laser output light pulse beam to form in a long axis of the beam a workpiece covering extent of the long axis;
the optical system including a field stop intermediate the laser and the workpiece;
the workpiece comprising a layer to be heated;
wherein the optical system focuses the laser output light pulse beam at a field stop with a magnification sufficient to maintain an intensity profile that has sufficiently steep sidewalls to allow the field stop to maintain a sufficiently steep beam profile at the workpiece without blocking the beam profile at too high an intensity level.
2. The apparatus of claim 1 further comprising:
a high average power in the laser output light pulse beam as delivered to the workpiece.
3. The apparatus of claim 1 further comprising:
a linebow correction mechanism in a short axis optical assembly.
4. The apparatus of claim 1 further comprising:
the linebow correction mechanism comprises a plurality of weak cross cylinders.
5. The apparatus of claim 1 further comprising:
the optical system comprises a catadioptric projection system.
6. The apparatus of claim 1 further comprising:
wherein the linewidth due to laser diffraction and divergence is less than geometric limitations.
7. The apparatus of claim 1 further comprising:
the system projects adjacent peaks of the nominal XeF spectrum to improve overall depth of focus through the separate center wavelengths of each respective adjacent peak having a different focal plane at the workpiece.
8. The apparatus of claim 1 further comprising:
a linebow is correction mechanism within a field stop optical assembly correcting linebow at the field stop plane and within a workpiece projection optical assembly correcting linebow at the workpiece plane.